Mohammad Khaja Nazeeruddin

Nationalité: Swiss

EPFL SB-DO
CH F0 494 (Bâtiment CH)
Station 6
1015 Lausanne

Office: CH F0 494
EPFLSBSB-DECPH-SB

EPFLSBISICISIC-DIV

Expertise

  • Perovskite Solar Cells

  • Molecular Engineering of Charge transporting Materials

  • Molecular Engineering of Sensitizers for Dye-Sensitized Solar Cells
  • Organic Light-Emitting Diodes

  • Design and development of molecular probes for heavy metal ions
  • Photophysics and Photochemistry of Molecular Assemblies

Expertise

  • Perovskite Solar Cells

  • Molecular Engineering of Charge transporting Materials

  • Molecular Engineering of Sensitizers for Dye-Sensitized Solar Cells
  • Organic Light-Emitting Diodes

  • Design and development of molecular probes for heavy metal ions
  • Photophysics and Photochemistry of Molecular Assemblies

Mission

Perovskite Solar Cells

  • Molecular Engineering of Charge transporting Materials

  • Molecular Engineering of Sensitizers for Dye-Sensitized Solar Cells
  • Organic Light-Emitting Diodes

  • Design and development of molecular probes for heavy metal ions
  • Photophysics and Photochemistry of Molecular Assemblies
  • Perovskite Solar Cells

  • Molecular Engineering of Charge transporting Materials

  • Molecular Engineering of Sensitizers for Dye-Sensitized Solar Cells
  • Organic Light-Emitting Diodes

  • Design and development of molecular probes for heavy metal ions
  • Photophysics and Photochemistry of Molecular Assemblies

Highly Cited Researcher

ResearcherID: B-1323-2008
URL : http://www.researcherid.com/rid/B-1323-2008
Subject : Chemistry; Energy & Fuels; Materials Science
Nazeeruddin is a Professor of Chemistry at the EPFL Sion campus, and his current research at EPFL focuses on Perovskite Solar Cells and Light-emitting Diodes. He has published more than 980 peer-reviewed papers , ten book chapters, and is the inventory/co-inventor of over 103 patents. His work's high impact has been recognized by invitations to speak at over 450 international conferences. He appeared in the ISI listing of most cited chemists and has more than 194,333 citations with an h-index of 197 (https://scholar.google.com/citations?hl=en&user=j4rH8MkAAAAJ). He teaches the "Functional Materials" course at EPFL, Korea University and Southeast University, China.
  • According to the Web of Science in 2016, he is the 5th most cited chemist in the world.
  • He is one of the 19 scientists identified by Thomson Reuters as the World's Most Influential Scientific Minds in 2015.
  • One of the 24 Highly Cited researchers was named in three ESI fields in 2018. https://hcr.clarivate.com/ .
  • Thomson Reuters' "Highly Cited Researcher" from 2014 to 2024.
  • Top 10 researchers in the perovskite solar cell research field by the Times Higher Education.
  • Based on the Career Long Impact, Nazeeruddin has been listed as one of the top 2% of most cited scientists in the world from the list published by Stanford University in October 2022. He directs and manages several industrial, national, and European Union projects. Several industrial partners, Panasonic, NEC, TOYOTA-AISIN, TOYOTA-Europe Motors, Solaronix, and ABENGOA, have funded his research. His total funding during the last 8 years is CHF 18 million.

He has been appointed a world-class university professor by Korea University and an adjunct professor by King Abdulaziz University, Jeddah, Imam Abdulrahman Bin Faisal University (IAU) and Southeast University, China.
He is an elected member of the European Academy of Engineering, of the European Academy of Sciences (EURASC), a Member of the Swiss Chemical Society, a Fellow of the Royal Society of Chemistry, and a Fellow of the Telangana Academy of Sciences. He won the 34th Khwarizmi International Award (KIA) Laureate in Fundamental Sciences in 2021.

Formation

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1986 – 1986 Osmania University, Hyderabad, India
Dirigée par M. M. Taquikhan

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1978 – 1980 Osmania University

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1975 – 1978 Osmania University

Awards

·


FELLOWSHIPS AND AWARD2014-2022


Lists of Most Cited in Chemistry, Materials Science and Engineering Researchers.2020-2021


Evaluation panel for the 2020 Kuwait prize.2018& 2020


Jury member of the Rei Jaume I foundation, Spain.2012







Swiss Chemical Society (SCS, 102343)2013







Elected as a member of the European Academy of Engineering (https://eae.edu.eu/members/EnergyandResourceEngineering/Mohammad%20Khaja%20Nazeeruddin.html)2017







Elected to the European Academy of Sciences (EURASC) and Member of the Swiss Chemical Society.2017







Fellow of The Royal Society of Chemistry.2019







Fellow of Telangana Academy of Sciences.2021







Awarded the 34th Khwarizmi International award in Basic Sciences.1998-2006


EPFL Award/ISIC/Switzerland, Brazilian FAPESP fellowship award in 1999, Japanese Government Science & Technology Agency Fellowship 1998, EPFL Award/ISIC/Switzerland 1998.1987-1989



Government of India National Scholar Award, only two people were selected from all over India
.1980-1985



Research Fellowship award, Council of Scientific and Industrial Research (CSIR), India.AwardsHighly Cited Researcher in the field of Chemistry & 2024Highly Cited Researcher in the field of Environment and Ecology & 2024Highly Cited Researcher in the field of Chemistry & 2023Highly Cited Researcher in the field of Engineering - 2023Highly Cited Researcher in the field of Environment and Ecology & 2023Highly Cited Researcher in the field of Materials Science - 2023Highly Cited Researcher in the field of Chemistry - 2022Highly Cited Researcher in the field of Environment and Ecology & 2022Highly Cited Researcher in the field of Chemistry - 2021Highly Cited Researcher in the field of Materials Science & 2021Highly Cited Researcher in the field of Materials Science - 2020Highly Cited Researcher in the field of Chemistry & 2020Highly Cited Researcher in the field of Chemistry - 2019Highly Cited Researcher in the field of Materials Science & 2019Highly Cited Researcher in the field of Materials Science - 2018Highly Cited Researcher in the field of Physics - 2018Highly Cited Researcher in the field of Chemistry & 2018Highly Cited Researcher in the field of Chemistry - 2017Highly Cited Researcher in the field of Chemistry - 2016Highly Cited Researcher in the field of Materials Science - 2015Highly Cited Researcher in the field of Chemistry - 2015Highly Cited Researcher in the field of Chemistry - 2014

Curriculum Vitae


  • Nazeeruddin is a Professor of Chemistry at the EPFL Sion campus, and his current research at EPFL focuses on Perovskite Solar Cells and Light-emitting diodes. He has published more than 980 peer-reviewed papers , ten book chapters, and he is the inventory/co-inventor of over 103 patents. His work's high impact has been recognized by invitations to speak at over 450 international conferences. He appeared in the ISI listing of most cited chemists and has more than 191,333 citations with an h-index of 197 (https://scholar.google.com/citations?hl=en&user=j4rH8MkAAAAJ). Several industrial partners, Panasonic, NEC, TOYOTA-AISIN, TOYOTA-Europe Motors, Solaronix, and ABENGOA, have funded his research. His total funding during the last 8 years is CHF 18 million. He teaches the "Functional Materials" course at EPFL and Korea University. According to the Web of Science in 2016, he is the 5th most cited chemist in the world and is one of the 19 scientists identified by Thomson Reuters as the World's Most Influential Scientific Minds in 2015. One of the 24 Highly Cited researchers was named in three ESI fields in 2018. https://hcr.clarivate.com/ . He was named Thomson Reuters' "Highly Cited Researcher" from 2014 to 2024 and was listed among the Top 10 researchers in the perovskite solar cell research field by the Times Higher Education. Based on the Career Long Impact, Nazeeruddin has been enlisted as one of the top 2% of most cited scientists in the world from the list published by Stanford University in October 2022. He directs and manages several industrial, national, and European Union projects. He has been appointed a world-class university professor by Korea University and an adjunct professor by King Abdulaziz University, Jeddah, Imam Abdulrahman Bin Faisal University (IAU) and Southeast University, China.
  • He is an elected member of the European Academy of Engineering, of the European Academy of Sciences (EURASC), a Fellow of the Royal Society of Chemistry, and a Fellow of the Telangana Academy of Sciences. He won the 34th Khwarizmi International Award (KIA) Laureate in Fundamental Sciences in 2021. He is on the Editorial Board of several Journals. ACADEMIC QUALIFICATIONS

B. Sc (Chemistry and Biology, Osmania University, Hyderabad, India) 1978
M. Sc (Chemistry, Osmania University, Hyderabad, India) 1980
Ph. D (Inorganic Chemistry, Osmania University, Hyderabad, India) 1986
APPOINTMENTS
2024-2028 : Professor at Southeast University, IC Department, Wuxi campus, China. 2023-2028 : Professor Emeritus, Faculty of Basic Sciences, ISIC, Group for Molecular Engineering of Functional Materials, EPFL, Switzerland 2012-2022 : Professor, Faculty of Basic Sciences, ISIC, Group for Molecular Engineering of Functional Materials, EPFL, Switzerland 2009-2014 : World Class University Professor, Department of Advanced Materials Chemistry, Korea University (Sejong Campus), Korea 2014-2019 : BKPLUS 21, Department of Advanced Materials Chemistry, Korea University (Sejong Campus), Korea 2014-2023 : Visiting Professor, King Abdul-Aziz University, Jeddah, Saudi Arabia 2014-2025 : Participating in the Program of Introducing Talents of Discipline to University ("111" Program), supported by the Ministry of Education of China, North China Electric Power University 2019-2025 : Advisory Board Member, University of Sharjah-College of Sciences 2024-2026 : International Iberian Nanotechnology Laboratory (INL) Scientific Advisory Board, Braga, Portugal 2024-2025 : Distinguished Researcher, Imam Abdulrahman Bin Faisal University (IAU), Dammam, Saudi Arabia1985-1986: Lecturer (Deccan College of Engineering and Technology, Osmania University, Hyderabad, India).






























1986-1987: Research Associate (Central Salt and Marine Chemicals Research Institute, Bhavnagar, India)






























1987-1988: Post-doctral fellow.































RESEARCH INTERESTS






























1. Perovskite Solar Cells






























2. Dye-Sensitized Solar Cells































3. Organic Light-Emitting Diodes






























4. Design and development of molecular probes for heavy metal ions.






























5. Development of Chemical Sensors.






























6. Photophysics and Photochemistry of Molecular Assemblies.

GROUP


PRESENT POST-DOCs



(1). Dr. Gao Peng



(2). Dr. Yong Hui Lee



(3). Dr. Peng Qin



(4). Dr. Yella Aswani



(5). Dr. Abate Antonio



(6). Paramaguru Ganesan




(7). Dar Ibraheem




(8). Michael Saliba




(9). Li Xiong




PRESENT DOCTORAL STUDENTS:



(1). Chandiran Aravind



(2). Dualeh Amalie



(3). Labouchère Philippe Pierre



(4). Aghazada Sadig



(5). Gratia Paul



(6). Rakstys Kasparas



(7). Hyeju Choi



(8). Konrad Domanski



(9). Im Jeong-Hyeok (guest student)



Alumni



Dr. Wu Kuan-Lin




Dr. Simon Mathew



Dr. Tom Holcombe



Dr. Lauren Polander



Dr. Mine Nice



Dr. Soo-Jin Moon



Dr. Yum Jun Ho



Dr. Shavaleev Nail Malikovich



Dr. Dr. Jared Delcamp



Dr. Florian Kessler



Dr. Baranoff Etienne



Rebecca Mitchell



Dr. Lee Hyo Joong



Dr. Nick Evans



Dr. Cedric Klein



Dr. Thierry Renouard



Dr. Jean-Jacques Lagref



Dr. Zhang Xianxi



Dr. E. Yoneda



Vulcano Rosaria



Teocoli Francesca

Talks


(55). Ordered Organic-Inorganic Hybrids using Ionic Liquids for Emerging Applications, Kick-off meeting, Hotel Palacio de Aiete, November 12, 2009.
(54). Progress in Dye-Sensitized Solar Cells, MANA presentation at Advanced
Photovoltaics Center at NIMS, Japan, December 9th -15th, 2009.
(53). Molecular Engineering of Sensitizers for dye-Sensitized Solar Cells, The 6th Korea-Japan Symposium on Frontier Photoscience (Joint Meeting with the 2009 International Conference on Frontier Photoscience and Functional Materials), October 30 ~ November 3, 2009, Korea University(Sejong Campus), Chungnam, Korea.
(52). Artificial Photosynthesis, Chochiwon Science High School, Korea, October 30, 2009.
(51). Power from the Sun using the Mesoscopic Solar Cells, Korean Chemical Society, Daejeon, Korea, October 29, 2009.
(50). Artificial Photosynthesis, ChungNam Science High School, Korea, October 21, 2009.
(49). Molecular Engineering of Sensitizers for Dye-Sensitized Solar Cell, Advanced Materials Division, KRICT, Korea, October 20, 2009.
(48). Artificial Photosynthesis, ChungBuk Science High School, Korea, October 16, 2009.
(47). Molecular Engineering of Sensitizers for dye-sensitized solar cells, Dongjin, SemiChem, Korea, October 14, 2009.
(46). Power from the Sun using Mesoscopic Solar Cells, WCU International Workshop on Dye-Sensitized and Organic Solar Cells, College of Science and Technology Hall #234, Korea University (Sejong Campus), October 13, 2009.
(45). Molecular Engineering of Materials for Photovoltaic and Optoelectronic Applications, Program of the solar cell workshop in Visp organized by Lonza, 8th October, 2009.
(44). Photochemistry and Photophysics of Coordination compounds, Chemistry and Physics of Materials for Energetics. A European School in Materials Science, University of Milano-BicoccaMilano, 14-19 September 2009.
http://pcamschool.mater.unimib.it/index.html
(43). Design and Development of Molecular Sensitizers for Solar Cell Applications, First International Meeting on Organic Materials for a Better Future, Ostuni, Italy, September 12-16, 2009.
http://futurmat1.mdbenterprise.it/program.html
(42) Swiss Chemical society meeting 4th Semtember 2009
(41). Organic Light Emitting Diodes, CELLO meeting at Brussels, 3rd September 2009.
(40). Design and Development of Molecular Sensitizers for Solar Cell Applications, First International Meeting on Organic Materials for a Better Future, Ostuni, Italy, September 12-16, 2009.
http://futurmat1.mdbenterprise.it/program.html
(39). Photochemistry and Photophysics of Coordination compounds, Chemistry and Physics of Materials for Energetics. A European School in Materials Science, University of Milano-BicoccaMilano, 14-19 September 2009
http://pcamschool.mater.unimib.it/index.html
(38). Sensitizers for Solar Cell Applications, ISOPHOS 09, International School on Organic Photovoltaics - Valencia, 13-15 July 2009
http://www.hopvconference.org/ISOPHOS09/index.php
(37). MOLECULAR ENGINEERING OF MATERIALS FOR SOLAR ENERGY CONVERSION, Nanoforum, Turin, Italy, June 9-11, 2009 http://www.nanoforum.it/index.php?option=com_wrapper&view=wrapper&Itemid=4〈=en.
(36). Dyes for Dye-Sensitized Solar Cells, INTERNATIONAL WORKSHOP ON MATERIALS AND DEVICES FOR SOLAR ENERGY CONVERSION, Location of Workshop: McKinley Hall, Wichita State University, Kanas, USA, May 22 -23, 2009
http://webs.wichita.edu/?u=chem&p=/solar/
(35). Molecular Engineering of Colorants for Solar Cell Applications, Convention on Colorants 2009, 5th - 6th February 2009, Mumbai, India.
(34). Molecular Engineering of Sensitizers for Solar Cell Applications, Joint ICTP-KFAS workshop on Nanoscience for Solar Energy Conversion, 27-29th October 2008, Trieste, Italy.
(33). Cyclometallated Ruthenium Sensitizers as a New Paradigm Towards High Efficiency Dye-Sensitized Solar Cells, IPS 17, 27th July -1st August 2008, Sydney, Australia.
(32). "Molecular Engineering of triplet emitters for OLED Applications" at the Business Line Electronic Materials, Ciba Specialty Chemicals Inc. CH-4002 Basel
Switzerland, on 9th August 2007.
(31). Solar Fuels: Making them a reality, workshop sponsored by the Imperial College Energy Futures Laboratory, in the Council Room, 170 Queens Gate, London SW7, 20th July 2007.
(30). Symposium on Solar Energy Conversion for the Fall 06 Materials Research Society meeting to be held in Boston, MA, USA, on November 27-December 1, 2006.
(29). «Sensitizers for Image Sensing» at Samsung, SAIT, Korea (Dr. Woncheol jung) 13th October 2006.
(28). «Molecular Engineering of Sensitizers for Solar Cell Applications" at the Department of Chemistry, Korea University, Jochiwon, Chungnam 339-700, Korea (Prof. Jaejung Ko), 12th October 2006.
(27). «Dye-sensitized Solar Cells" at Graduate school of Engineering, Toin University of Yokohama, Japan (Professor Tsutomu Miyasaka), 10th October 2006.
(26). «Molecular Engineering of Sensitizers for Conversion of Light to Electricity and Electricity to Light» at Department of Industrial Chemistry, Faculty of Engineering, Tokyo University of Science (Tokyo Rika Daigaku), 1-3, Kagurazaka, Shinjyuku-ku, Tokyo, 10th October 2006.
(25). «Dye-Sensitized Solar Cells» at International Summer School 2006, Krutyn, Poland, 28th May 2006.
(24). «Molecular Engineering of Sensitizers for Solar Cell Applications" at International Summer School 2006, Krutyn, Poland, 28th May 2006.
(23). «Platinum group metal complexes for mesoscopic Solar Cells" at International Summer School 2006, Krutyn, Poland, 29th May 2006.
(22). «Molecular Engineering of Light Emitting complexes for OLED Applications» at International Summer School 2006, Krutyn, Poland, 29th May 2006.
(21). «Light Emitting complexes for OLED Applications» OLED colloquium, at Philips Research, Aachen, Germany, 13th March 2006.
(20). «Molecular Engineering of Sensitizers for Solar Energy Conversion and Light Emitting Diodes» at Imperial college London, 12th June, 2005.
(19). «Molecular Engineering of Novel Sensitizers and their Application in Dye-Sensitized Solar Cells» at Symposium on Physical Studies on Photo- or Electron responsive Materials, Academia Sinica, Taiwan, Institute of Chemistry, Taiwan, March 9, 2005.
(18). «Efficient Conversion of Sunlight to Electric Power by Dye Sensitized Solar Cells» at Industrial Technology Research Institute (ITRI), Nanotechnology Research Center, Taiwan, March 8, 2005
(17). «Engineering of Sensitizers for Conversion of Light to Current and Current to Light» Symposium on Inorganic Materials and Photochemistry, at Department of Chemistry, National Tsing Hua university, Taiwan, March 7, 2005.
(16). «Engineering of Efficient Panchromatic Sensitizers for Nanocrystalline TiO2 Based Solar Cells» Photochemistry centre, Faculty of Science, Ain SHAMS University, Cairo, December 29, 2004.
(15). «Generation of Electric power from sunlight by dye sensitized nanocrystalline solar cells» and Electricity to Light" at Korea Conference on Innovative Science and Technology (KCIST) – 2004, «New Frontiers in Photovoltaics.» held on September 1-4, 2004 at Hyundai Hotel in Gyeongju, Korea.
(14). «Molecular Engineering of Sensitizers for Conversion of Light to Electricity and Electricity to Light" at Korea Research Institute of Chemical Technology (Host Sang Il Seok) 30th August 2004.
(13). «Molecular Engineering of Sensitizers for Conversion of Light to Electricity « Plenary talk at IICT, India, on the occasion of diamond jubilee ceremony, «Catalysis in Organic Synthesis: New Horizons» August 3-4th 2004.
(12). «Dye sensitized solar cells « Invited talk at ISPPCC, Hong Kong, July 4-9th 2004.
(11). «Oxygen Sensors», at Centre for Chemical Sensors and Chemical Information Technology (CCS), ETH Technopark, Technoparkstr. 1, CH-8005 Zürich, March 18, 2004.
(10). «Microwave Synthesis of Sensitizers» at CEM conference, Basel, April 10, 2003.
(9). «Engineering of Efficient Panchromatic Sensitizers for Nanocrystalline TiO2 Based Solar Cells» The 4th NIMC International Symposium on Photoreaction Control and Photofunctional Materials, Tsukuba, Ibaraki, Japan, March 14-16, 2001.
(8). «Dyes for Semiconductor Sensitization» at NIMC, Tsukuba Science Center, Tsukuba, Japan (host Dr. Arakawa) March 12, 2001.
(7). «Modulation of Nanocrystalline Titanium Dioxide Photoelectrodes by the Dyes Containing Different Degrees of Protons and cations» at 13th International Symposium on the Photophysics and Photochemistry of Coordination Compounds, Isle of Lipari, Italy, July 26- July 1, 1999.
(6). «Photophysics and Photochemistry of Ruthenium Polypyridyl Complexes» at Department of Chemistry, Graduate School of Science, Osaka University, Osaka, (Prof. Takeshi Ohno), 27th March 1998.
(5). «Engineering of Efficient Sensitizers for Nanocrystalline TiO2 Based Solar Cells» at NIMC, Tsukuba Science Center, Tsukuba, Japan, (Dr. Arakawa) 23rd March 1998.
(4). «Efficient Panchromatic sensitization of nanocrysatlline TiO2 films by novel ruthenium complexes» at The First NIMC International Symposium on Photoreaction Control and Photofunctional Materials, Tsukuba, Ibaraki, Japan, March 16-18, 1998.
(3). «Dye Sensitized Solar Cells» at Faculty of Engineering, Osaka University, Osaka, (Prof. Yanagida) 3rd August 1996.
(2). «Molecular Engineering of Sensitizers for Solar Energy Conversion Applications» at CMCRI, Bhavnagar, India, (Prof. M. M. Taquikhan) 17th December 1991.
(1). «Dye Sensitized Solar Cells» at Department of Chemistry, School of Science, Osmania University, Hyderabad, India, (Prof. Raveendhra Reddy) 9th December 1993.

REVIEW ARTICLES AND BOOK CONTRIBUTIONS


REVIEW ARTICLE, BOOK CONTRIBUTIONS
(34). Phosphorescent Neutral Iridium (III) Complexes for Organic Light Emitting Diodes, Abd. Rashid bin Mohd Yusoff, Aron J. Huckaba and Mohammad Khaja Nazeeruddin. Springer publisher, Edited by Henk Bolink and Nicola Armoroli.
(33). Charge selective contact materials for Perovskite Solar Cells (PSCs), by Peng Gao, Mohammad Khaja Nazeeruddin, a book chapter edited by Dr. Tze-Chien Sum and Nripan Mathews, Wiley-VCH publishers (the publishers of Angewandte Chemie and Advanced Materials). The book is titled "Halide Perovskites: Photovoltaics, Light Emitting Devices and Beyond".
(32). Recent progress in organohalide lead perovskites for photovoltaic and optoelectronic applications , Yusoff, Abd Rashid Bin Mohd; Gao, Peng; Nazeeruddin, Mohammad Khaja, COORDINATION CHEMISTRY REVIEWS Volume: 373 Special Issue: SI Pages: 258-294 Published: OCT 15 2018.
(31). All that glitters is not gold: Recent progress of alternative counter electrodes for perovskite solar cells , Liang, Lusheng; Cai, Yu; Li, Xin; Nazeeruddin, M. K:, NANO ENERGY Volume: 52 Pages: 211-238 Published: OCT 2018.
(30). Low-Dimensional Perovskites: From Synthesis to Stability in Perovskite Solar Cells , Yusoff, Abd Rashid bin Mohd; Nazeeruddin, Mohammad Khaja, ADVANCED ENERGY MATERIALS Volume: 8 Issue: 26 Article Number: 1702073 Published: SEP 14 2018.
(29). Ruthenium Complexes as Sensitizers in Dye-Sensitized Solar Cells , Aghazada, Sadig; Nazeeruddin, Mohammad Khaja, INORGANICS Volume: 6 Issue: 2 Article Number: 52 Published: JUN 2018.
(28). Frontiers, opportunities, and challenges in perovskite solar cells: A critical review , Ansari, Mohammed Istafaul Haque; Qurashi, Ahsanulhaq; Nazeeruddin, Mohammad KhajaJOURNAL OF PHOTOCHEMISTRY AND PHOTOBIOLOGY C-PHOTOCHEMISTRY REVIEWS Volume: 35 Pages: 1-24 Published: JUN 2018.
(27). Phosphorescent Neutral Iridium (III) Complexes for Organic Light-Emitting Diodes , Yusoff, Abd. Rashid Bin Mohd; Huckaba, Aron J.; Nazeeruddin, Mohammad KhajaTOPICS IN CURRENT CHEMISTRY Volume: 375 Issue: 2 Article Number: 39 Published: APR 2017.

(26). Strategies for Tuning Emission Energy in Phosphorescent Ir(III) Complexes , Huckaba, Aron J.; Nazeeruddin, Mohammad K. COMMENTS ON INORGANIC CHEMISTRY Volume: 37 Issue: 3 Pages: 117-145 Published: 2017.
(25). Perovskite Solar Cells: Influence of Hole Transporting Materials on Power Conversion Efficiency , Ameen, Sadia; Rub, Malik Abdul; Kosa, Samia A.; et al., CHEMSUSCHEM Volume: 9 Issue: 1 Pages: 10-27 Published: JAN 8 2016.
(24). I nfluence of Ancillary Ligands in Dye-​Sensitized Solar Cells,, Pashaei, Babak; Shahroosvand, Hashem; Graetzel, Michael; Nazeeruddin, Mohammad Khaja, Chemical Reviews (Washington, DC, United States) (2016), 116(16), 9485-9564.
(23). CHAPTER 6, Chemistry of Sensitizers for Dye-sensitized Solar Cells, PENG GAO, MICHAEL GRAÃ…NTZEL AND MDK NAZEERUDDIN, Published on 10 July 2014 on http://pubs.rsc.org | doi:10.1039/9781849739955-00186.
(22). rganohalide lead perovskites for photovoltaic applications , Gao, Peng; Gratzel, Michael; Nazeeruddin, Mohammad K. Energy & Environmental Science (2014), 7(8), 2448-2463.
(21). Meso-​Substituted Porphyrins for Dye-​Sensitized Solar Cells , Urbani, Maxence; Gratzel, Michael; Nazeeruddin, Mohammad Khaja; Torres, Tomas, From Chemical Reviews (Washington, DC, United States) (2014), 114(24), 12330-12396.
(20). Meso-Substituted Porphyrins for Dye-Sensitized Solar Cells , Urbani, Maxence; Graetzel, Michael; Nazeeruddin, Mohammad Khaja; et al., CHEMICAL REVIEWS Volume: 114 Issue: 24 Pages: 12330-12396 Published: DEC 24 2014.
(19). Organohalide lead perovskites for photovoltaic applications , Gao, Peng; Graetzel, Michael; Nazeeruddin, Mohammad K., ENERGY & ENVIRONMENTAL SCIENCE Volume: 7 Issue: 8 Pages: 2448-2463 Published: AUG 2014.
(18). Perovskite as Light Harvester: A Game Changer in Photovoltaics, Kazim, Samrana; Nazeeruddin, Mohammad Khaja; Graetzel, Michael; et al., ANGEWANDTE CHEMIE-INTERNATIONAL EDITION Volume: 53 Issue: 11 Pages: 2812-2824 Published: MAR 10 2014.(17). Mesoscopic dye-​sensitized solar cells, By Nazeeruddin, Mohammad Khaja; Ko, Jaejung; Graetzel, Michael, Edited by Torres, Tomas; Bottari, Giovanni, From Organic Nanomaterials (2013), 579-597, 1 plate.
(16). Metal-​oxide nanoparticles for dye-​sensitized solar cells, By Sauvage, Frederic; Nazeeruddin, Mohammad K.; Gratzel, Michael, Edited by Ogale, Satishchandra B.; Venkatesan, Thirumalai V.; Blamire, Mark G, From Functional Metal Oxides (2013), 341-383.
(15). Metal free sensitizer and catalyst for dye sensitized solar cells, Ahmad, Shahzada; Guillen, Elena; Kavan, Ladislav; et al., ENERGY & ENVIRONMENTAL SCIENCE Volume: 6 Issue: 12 Pages: 3439-3466 Published: DEC 2013.
(14). Heteroleptic ruthenium complex containing substituted triphenylamine hole-transport unit as sensitizer for stable dye-sensitized solar cell, Yum, Jun-Ho; Moon, Soo-Jin; Karthikeyan, Chedarampet S.; et al., NANO ENERGY Volume: 1 Issue: 1 Pages: 6-12 Published: JAN 2012.
(13). , Baranoff, Etienne; Yum, Jun-Ho; Graetzel, Michael; et al., JOURNAL OF ORGANOMETALLIC CHEMISTRY Volume: 694 Issue: 17 Pages: 2661-2670 Published: AUG 1 2009.
(12). Molecular Engineering of Sensitizers for Conversion of Solar Energy into Electricity, by Jun-ho Yum and Md. K. Nazeeruddin, Monograph on «Dye Sensitized Solar Cells» K. Kalyanasundaram, Editor, to be published by EPFL Press 2009.
(11). Recent progress in solid state dye-sensitized solar cells, Jun-Ho Yum, Peter Chen, M. Grätzel and Md. K. Nazeeruddin, ChemSusChem, 1, 699-707, 2008.
(10). Molecular Engineering of Iridium Complexes and their Application in Organic Light Emitting Devices, Md. K. Nazeeruddin, C. Klein, M. Grätzel, L. Zuppiroli and D. Berner, edited by H. Yersin, Wiley-VCH OLED book, CODEN: 69KPPB AN 2008:615587 pages 363-390, 2008.
(9). «Transition metal Complexes for Photovoltaic and OLED Applications» Md. K. Nazeeruddin, and M. Grätzel, Structure and Bonding, Springer DE, page 430-493, 2007.
(8). Transition metal complexes for photovoltaic and light emitting applications , Nazeeruddin, MK; Graetzel, M. PHOTOFUNCTIONAL TRANSITION METALS COMPLEXES Book Series: Structure and Bonding Volume: 123 Pages: 113-175 Published: 2007.
(7). Stepwise assembly of amphiphilic ruthenium sensitizers and their applications in dye-sensitized solar cell, Nazeeruddin, M.K.; Zakeeruddin, SM; Lagref, JJ; et al., COORDINATION CHEMISTRY REVIEWS Volume: 248 Issue: 13-14 Pages: 1317-1328 Published: JUL 2004.
(6). Nazeeruddin, M.K.; Editor. Special Issue: Michael Graetzel Festschrift, A tribute for this 60th Birthday: Dye Sensitized Solar Cells. [In: Coord. Chem. Rev.; 2004, 248(13-14)]. (2004), 369 pp. CAN 142:394997 AN 2004:937842.
(5). Conversion and Storage of Solar Energy using Dye-sensitized Nanocrystalline TiO2 Cells, Md. K. Nazeeruddin and M. Grätzel, Comprehensive Coordination Chemistry &2, Volume 9, Chapter 3, edited by M. Ward, Elsevier Science Ltd, 2003.
(4). Dye-Sensitized Solar Cells Based on Mesoscopic Oxide Semiconductor films, Md. K. Nazeeruddin and M. Grätzel, Molecular and Supramolecular Photochemistry, Series, Volume 9, edited by V. Ramamurthy and KS Schanze, Marcel-Dekker, 2002, 301-343.
(3).Dyes for Semiconductor Sensitization, Md. K. Nazeeruddin and M. Grätzel, Encyclopedia of Electrochemistry: Semiconductor Electrodes and Photoelectrochemistry, Editors-in-Chief: Allen Bard, Martin Stratmann; Editor: Stuart Licht, 2002, Volume 6, Chapter 5.2, pages 407-431.
(2). Electric load forecasting: literature survey and classification of methods , Alfares, HK; Nazeeruddin, M, INTERNATIONAL JOURNAL OF SYSTEMS SCIENCE Volume: 33 Issue: 1 Pages: 23-34 Published: JAN 2002.
(1). Inter-chromophore electronic interactions in ligand-bridged polynuclear complexes: a comparative study of various bridging ligands, K. Kalyanasundaram and Md. K. Nazeeruddin, Inorganica Chimica Acta, 226, 213-230 (1994).

Publications

Communicated in 2010

Communicated / Accepted in 2011

(239). Y Aswani Yella, Nok Tsao Hoi, Yi Chenyi, Eric Wei-Guang Diau, Chen Yu Yeh, Shaik M Zakeeruddin, Md. Khaja Nazeeruddin and Michael Grätzel, communicated to Science, 2011.

PROJECTS

Projects:







(17). PEROVSKITE, AISIN, JAPAN, 2013-PRESENT.







(16). Novel Ruthenium Dyes for Dye-Sensitized Solar Cells, SOLVAY-DSC, 2010-PRESENT







(15). NANOMATCELL, research project, FP7-ENERGY, 2013-2015.







(14). GLOBASOL, FP7-ENERGY-2012.10.2.1: FUTURE EMERGING TECHNOLOGIES, 2013-2015.







(13). ABENGOA, Soil state DSC, 2012-2016.







(12). Sino-Swiss Science and Technology Cooperation, 2012-2014.







(11). New Redox couples, NEC, JAPAN, 2010-2012.







(10). POWERWEAVE, NMP.2011.4.0-3, ADVANCED TEXTILES FOR THE ENERGY AND ENVIRONMENTAL PROTECTION MARKETS, 2012-2014.







(9). MOLESOL: All-carbon platforms for highly efficient molecular wire-coupled dye-sensitized solar cells, Collaborative Project / Small or medium-scale focused research project, FP7-ENERGY-2010-FET, 2010-2013.







(8). SANS: Sensitizer Activated Nanostructured Solar Cells, EU-FP7, 2010-2013.







(7). ESCORT: Efficient Solar Cells based on Organic and hybrid Technology, 2010-2014.







(6). CELLO: Cost-Efficient Lighting devices based on Liquid processes and ionic Organometallic complexes, Grant Agreement Number 248043, EU FP7, 2010-2012.







(5). ORION: Ordered Inorganic-Organic Hybrids using Ionic liquids for Emerging Applications, EU FP7, Ordered Inorganic/Organic Hybrid Materials for Colloidal Dots Sensitized Solid State Solar Cells, EU FP7, 2009-2013.







(4). GLOBAL RESEARCH LAB PROGRAM 2007, Korea Foundation for International Cooperation of Science and Technology, 2008- PRESENT.







(3). Design and Development of Blue Light Emitting Neutral Iridium Complexes for OLED Applications, Solvay, Belgium, 2008-2012.







(2). Organic Dyes for Dye-Sensitized Solar Cells, DONGJIN, 2009-PRESENT







(1). Self Organized NanoStructures (SONS) 2008-2010.

POSTER PRESENTATION


(26). Y. Zhang, C. Barolo, R. Buscaino, E. Barni, P. Quagliotto, G. Viscardi, MK Nazeeruddin, M. Graetzel 2,2'-dipyridylamino-based tetradentate ligands for novel ruthenium photosensitizers in Dye-Sensitized Solar Cells (DSSC) in XVIII Congresso Nazionale sulla Scienza e Tecnologia del Vuoto & Giornate di Studio sulle Tecnologie del Fotovoltaico, Firenze (FI) 2-4 April 2007.





(25). R. Buscaino, C. Baiocchi, C. Barolo, C. Medana, M. Graetzel, MK Nazeeruddin, G. Viscardi, A Mass Spectrometric Analysis of Sensitizer Solution used for Dye-Sensitized Solar Cell in XVIII Congresso Nazionale sulla Scienza e Tecnologia del Vuoto & Giornate di Studio sulle Tecnologie del Fotovoltaico, Firenze (FI) 2-4 April 2007.





(24). Y. Zhang, C. Barolo, R. Buscaino, E. Barni, P. Quagliotto, G. Viscardi, MK Nazeeruddin, M. Graetzel 2,2'-dipyridylamino-based tetradentate ligands for novel rithenium photosensitizers in Dye-Sensitized Solar Cells (DSSC) in VI International School of Organometallic Chemistry, Camerino 8-12 September 2007.





(23). (





22). A Magnetically Controlled Wireless Intraocular Oxygen Sensor, (172), presentation at the 29th International Conference of the IEEE Engineering in Medicine and Biology Society in conjunction with the Biennial Conference of the French Society of Biological and Medical Engineering (SFGBM) to be held in Lyon, France from 23rd - 26th August, 2007.





(21). Novel High Molar Extinction Coefficient Charge Transfer Sensitizer for Solar Cell Applications, Takeru Bessho, Seigo Ito, Cedric Klein, Pascal Comte, Paul Liska, Mohammad K. Nazeeruddin and Michael Graetzel, Abstract, Solar 2006, Gizah, Egypt.





(20). Organized Mesoporous TiO2 Thin Films for Dye Sensitized Solar Cells, Ladislav Kavan, Markéta Zukalova, Arnot Zukal, Paul Liska, Md K. Nazeeruddin and Michael Graetzel, Abstract Solar 2006, Gizah, Egypt.





(19). "Highly Selective and Reversible Optical, Colorimetric and





Electrochemical Detection of Mercury (II) by Amphiphilic Ruthenium complexes Anchored onto Mesoporous Oxide Films" by Md. K. Nazeeruddin, C. Klein, D. Di Censo, R. Humphry-Baker and M. Graetzel, poster in the Analytical Chemistry session of the Swiss Chemical Society, October 13, 2005. The abstract has been published in the last issue 59(9) 2005 of CHIMIA and carries number 14.





(18). Synthesis of Ru Complexes of Carboxylated Phenanthroline, and Application to Dye-Sensitized Solar-Cells, H. Sugihara, LP Singh, K. Sayama, H. Arakawa, Md. K Nazeeruddin and M. Greatzel, ABSTRACTS OF PAPERS OF THE AMERICAN CHEMICAL SOCIETY 1999, Vol 217, Iss MAR, pp 320-INOR.
(17). Modulation of Nanocrystalline Titanium Dioxide Photoelectrodes by the Dyes Containing Different Degrees of Protons and cations, Md. K. Nazeeruddin, SM Zakeeruddin, R. Humphry-baker and M. Grätzel, Oral presentation at 13th International Symposium on the Photophysics and Photochemistry of Coordination Compounds, Isle of Lipari, Italy, July 26- July 1, 1999, Extended abstracts O-29.


(16). Efficient Panchromatic sensitization of nanocrystalline TiO2 films by novel ruthenium comlexes, Md. K. Nazeeruddin, SM Zakeeruddin, R. Humphry-Baker, M. Jirousek, P. Liska, N. Vlachopoulos and M.Graetzel, Paper presented at The First NIMC International Symposium on Photoreaction Control and Photofunctional Materials, Tsukuba, Ibaraki, Japan, March 16-18, 1998, Extended abstracts P2-7.


(15). MLCT and Redox regulation in ruthenium (II) polypyridyl complexes of 2,6-bis(1-methylbenzimidazol-2

Prix et distinctions

2021

Publications représentatives

DFT-INDO/S modeling of new high molar extinction coefficient charge-transfer sensitizers for solar cell applications

K. Nazeeruddin Mohammad, Q. Wang, L. Cevey, V. Aranyos, P. Liska, E. Figgemeier, C. Klein, N. Hirata, S. Koops, A. Haque Saif, R. Durrant James, A. Hagfeldt, A.B.P. Lever and M. Gratzel
Published in Inorganic chemistry, 45(2), 787-97 (2006) in

Highly Selective and Reversible Optical, Colorimetric and Electrochemical Detection of Mercury (II) by Amphiphilic Ruthenium complexes Anchored onto Mesoporous Oxide Films

Md. K. Nazeeruddin, D. Di Censo, R. Humphry-Baker, and M. Gr�tzel
Published in Ad. Functional Materials, 16, 189-194, 2006. in

Efficient and stable solid state light emitting electrochemical cell using tris(4,7-diphenyl-1,10-phenanthroline)ruthenium(II) hexafluorophosphate and and its simple microwave assited synthesis

Henk J. Bolink, Luca Cappelli, Eugenio Coronado, Michael Gr�tzel, and Md K. Nazeeruddin
Published in J. AM. CHEM. SOC. 128, 46-47, 2006. in

Combined Experimental and DFT-TDDFT Computational Study of Photoelectrochemical Cell Ruthenium Sensitizers

Md. K. Nazeeruddin, Filippo De Angelis, Simona Fantacci, Annabella Selloni, Guido Viscardi, Paul Liska, Seigo Ito, Bessho Takeru and Michael Gr�tzel
Published in J. AM. CHEM. SOC. 16835-16847, 127, 2005 in

Molecular Control of Recombination Dynamics in Dye Sensitized Nanocrystalline TiO2 Films: Free Energy vs. Distance Dependence.

John N. Clifford, Emilio Palomares, Md. K. Nazeeruddin, M. Gr�tzel, Jenny Nelson, X.J Li, Nicholas J. Long and James R. Durrant
Published in J. Am. Chem. Sco. 126, 5225-5233, 2004. in

Highly Phosphorescence Iridium Complexes and Their Application in Organic Light-Emitting Devices

Md. K. Nazeeruddin, R. Humphry-Baker, D. Berner, S. Rivier, L. Zuppiroli, and M. Graetzel
Published in J. AM. CHEM. SOC. 125, 8790-8797, 2003. in

A remarkably stable quasi-solid-state dye-sensitized solar cell based on an amphiphilic ruthenium sensitizer and a polymer gel electrolyte

Peng Wang, Shaik M. Zakeeruddin, Jacques E. Moser, Md. K. Nazeeruddin, Takashi Sekiguchi and Michael Gr�tzel
Published in Nature Mater, 2, 402- 407, 2003. in

Photoswitchable isomers to improve grain boundary resilience and perovskite solar cells stability under light cycling

Z. ZhangR. ZhuG. LiY. TangH. Wu  et al.

Nature Energy. 2026. DOI : 10.1038/s41560-026-01993-z.

Toward Reliable Metal Halide Perovskite FETs: From Electronic Structure and Device Physics to Stability and Performance Engineering

G. ChatzigiannakisA. SoultatiL. C. PalilisE. PolydorouK. Davazoglou  et al.

Advanced Electronic Materials. 2026. DOI : 10.1002/aelm.202500568.

Reducing Interface Energy Loss of Perovskite Solar Cells by Molecular Engineering of Hole‐Transporting Materials

G. ShaoS. YangJ. ChenD. WangJ. Zhang  et al.

Angewandte Chemie International Edition. 2026. DOI : 10.1002/anie.202523799.

Efficient, Reversible Lead Adsorption in a Thiol‐Decorated Zirconium‐Metal–Organic Framework

T. M. O. FelderN. TaheriT. SchertenleibA. F. S. BelinP. Rodlamul  et al.

Small. 2026. DOI : 10.1002/smll.202513162.

Anti-aggregation self-assembled monolayers enable high-performance and scalable perovskite solar cells

K. DuC. HuangA. WangH. ZhangL. Li  et al.

Nature Communications. 2026. DOI : 10.1038/s41467-025-68207-0.

Tri-Band Regulation and Split-Type Smart Photovoltaic Windows for Thermal Modulation of Energy-Saving Buildings in All-Season

Q. WangZ. NaJ. GaoY. LiuY. Chen  et al.

Nano-Micro Letters. 2026. DOI : 10.1007/s40820-025-01985-w.

Efficient and stable inverted perovskite solar cells employing self-assembled hole-transporting monolayers with enhanced interface interaction

B. LiJ. LiuB. LuX. LiuM. Han  et al.

Journal of Energy Chemistry. 2026. DOI : 10.1016/j.jechem.2025.08.081.

Advances in Side‐Chain Engineering of Triarylamine and Thienyl‐Based Hole Transport Materials for Perovskite Solar Cells

P. MahadzirM. MottakinY. LiS. SepeaiN. Ludin  et al.

Progress in Photovoltaics: Research and Applications. 2025. DOI : 10.1002/pip.70045.

Lead, Locked Away: Porous Zr–Phytate Coordination Polymers for Rapid and Selective Removal of Pb <sup>2+</sup> from Water

N. TaheriT. SchertenleibT. M. O. FelderL. PiveteauB. Mouriño  et al.

Journal of the American Chemical Society. 2025. DOI : 10.1021/jacs.5c11825.

Tandem Takeoff: Powering Tomorrow with Industrial‐Grade Perovskite/Silicon Solar Cells

M. VasilopoulouD. HuangJ. GongF. LiH. Zhang  et al.

Advanced Energy Materials. 2025. DOI : 10.1002/aenm.202504478.

Rational Design of Asymmetric FeN<sub>3</sub>S Single‐Atom Sites for <i>e</i><sub>g</sub> Orbital Engineering Toward Efficient ORR in PEMFCs

C. ChenX. LaiY. JianD. ZhangW. Huang  et al.

Small. 2025. DOI : 10.1002/smll.202508823.

Oriented Crystallization of Perovskite Film via Fluorine‐Containing Hyperbranched Polymer for Efficient and Stable Perovskite Solar Cells

J. HuangX. LiZ. ZhangT. SunH. Dong  et al.

Advanced Materials. 2025. DOI : 10.1002/adma.202511684.

Innovating Carbon-based Perovskite Solar Cells: the Role of a Cn-anchoring Self-assembled Molecular Layer in Efficiency and Stability

S. RezakhaniH. ShahroosvandP. GaoM. K. Nazeeruddin

JOURNAL OF MATERIALS CHEMISTRY A. 2025. DOI : 10.1039/d5ta02440d.

Dopamine Dopes the Performance of Perovskite Solar Cells

F. AnsariL. ZhengL. PfeiferF. T. EickemeyerS. M. Zakeeruddin  et al.

Advanced Materials. 2025. DOI : 10.1002/adma.202501075.

Active Passivation Charge Transport in n‐i‐p Perovskite Solar Cells Approaching 26% Efficiency

L. LiJ. XuL. FangZ. FengH. Huang  et al.

Advanced Materials. 2025. DOI : 10.1002/adma.202503903.

Special issue on Advances in Solar Energy: Perovskite solar cells

L. GiribabuM. K. NazeeruddinS. P. Singh

Solar Energy. 2025. DOI : 10.1016/j.solener.2025.113433.

High‐Efficiency Sn‐Pb Perovskite Solar Cells via Nucleation and Crystallization Control

A. WangK. DuZ. FangY. RenC. Zhou  et al.

Advanced Materials. 2025. DOI : 10.1002/adma.202418766.

Tuning Electronic and Optical Properties of 2D/3D Interfaces of Hybrid Perovskites through Interfacial Charge Transfer: Prediction of Higher-Efficiency Interface Solar Cells Using Hybrid-DFT Methods

H. BanerjeeM. K. NazeeruddinS. Chakraborty

ACS APPLIED MATERIALS & INTERFACES. 2025. DOI : 10.1021/acsami.5c00201.

Impact of processing atmosphere on nanoscale properties of highly efficient Cs<sub>0.05</sub>MA<sub>0.05</sub>FA<sub>0.9</sub>PbI<sub>3</sub> perovskite solar cells

M. U. FarooqS. GharabeikiD. YongJ. F. MachadoJ.-N. Audinot  et al.

NANOSCALE. 2025. DOI : 10.1039/d4nr04205k.

Facile and Low-Cost Design Alternative of Spiro-OMeTAD as p-Type Semiconductor for Efficient Perovskite Solar Cells

S. DaskeviciuteY. ZhangM. DaskevicieneK. RakstysJ. Petrulevicius  et al.

SOLAR RRL. 2025. DOI : 10.1002/solr.202500034.

Fluorene-Terminated π-Conjugated Spiro-Type Hole Transport Materials for Perovskite Solar Cells

M. ZhaiK. DuC. LiuC. ChenG. Li  et al.

ACS ENERGY LETTERS. 2025. DOI : 10.1021/acsenergylett.4c03233.

Efficient Polycrystalline Single-Cation Perovskite Light-Emitting Diodes by Simultaneous Intracrystal and Interfacial Defect Passivation

H. KimJ. M. HeoC. WolfY. H. KimS. C. Lee  et al.

Small (Weinheim an der Bergstrasse, Germany). 2025. DOI : 10.1002/smll.202405272.

Techno-economic analysis of perovskite-tandem solar modules

N. BhatiS. PapaiakovouM. K. NazeeruddinF. Maréchal

2025. 2025 IEEE 53rd Photovoltaic Specialists Conference, Montreal, QC, Canada, 2025-06-08 - 2025-06-13. p. 286 - 288. DOI : 10.1109/PVSC59419.2025.11132939.

Device Performance of Emerging Photovoltaic Materials (Version 6)

O. AlmoraA. O. AlvarezD. BaranC. I. CabreraL. A. Castriotta  et al.

Advanced Energy Materials. 2025. DOI : 10.1002/aenm.202505525.

Solubilizing and stabilizing C<inf>60</inf> with n-type polymer enables efficient inverted perovskite solar cells

Z. XingS. MaB. W. ChenM. AnA. Fan  et al.

Joule. 2025. DOI : 10.1016/j.joule.2024.101817.

Localized Tunneling 1D Perovskitoid Passivated Contacts for Efficient and Stable Perovskite Solar Modules

Q. WangK. ZhangW. DingY. HeX. Chen  et al.

Advanced Energy Materials. 2025. DOI : 10.1002/aenm.202405133.

Formation Dynamics of Thermally Stable 1D/3D Perovskite Interfaces for High-Performance Photovoltaics

L. LiangZ. A. NanY. LiY. ZhangZ. Fei  et al.

Advanced Materials. 2025. DOI : 10.1002/adma.202413841.

Charge-Selective Contact Materials for Perovskite Solar Cells (PSCs)

P. GaoM. K. Nazeeruddin

Halide Perovskites: Photovoltaics, Light Emitting Devices, and Beyond; Wiley, 2025. p. 131 - 153.

High-Efficiency Carbon Perovskite Solar Cells via Cathode Interface Engineering by using CuPc Hole-Transporting Layers

Z. ZamanH. ShahroosvandS. BellaniF. BonaccorsoM. K. Nazeeruddin

Angewandte Chemie (International ed. in English). 2025. DOI : 10.1002/anie.202425191.

Perovskite heteroepitaxy for high-efficiency and stable pure-red LEDs

K. WeiT. ZhouY. JiangC. SunY. Liu  et al.

Nature. 2025. DOI : 10.1038/s41586-024-08503-9.

Cation interdiffusion control for 2D/3D heterostructure formation and stabilization in inorganic perovskite solar modules

C. LiuY. YangJ. D. FletcherA. LiuI. W. Gilley  et al.

Nature Energy. 2025. DOI : 10.1038/s41560-025-01817-6.

Investigation of Potential-Induced Degradation and Recovery in Perovskite Minimodules

J. ZhangH. WuY. ZhangF. CaoZ. Qiu  et al.

Progress in Photovoltaics: Research and Applications. 2024. DOI : 10.1002/pip.3848.

A spiro-type self-assembled hole transporting monolayer for highly efficient and stable inverted perovskite solar cells and modules

X. ZhangB. LiS. ZhangZ. LinM. Han  et al.

Energy & Environmental Science. 2024. DOI : 10.1039/d4ee01960a.

Device Performance of Emerging Photovoltaic Materials (Version 5)

O. AlmoraG. C. BazanC. I. CabreraL. A. CastriottaS. Erten-Ela  et al.

ADVANCED ENERGY MATERIALS. 2024. DOI : 10.1002/aenm.202404386.

Enhancing the Efficiency and Stability of Perovskite Solar Cells Using Chemical Bath Deposition of SnO<inf>2</inf> Electron Transport Layers and 3D/2D Heterojunctions

S. TianX. X. GaoD. ReyesO. A. SyzgantsevaM. M. Baytemirov  et al.

Small (Weinheim an der Bergstrasse, Germany). 2024. DOI : 10.1002/smll.202406929.

Quasi-Planar Core Based Spiro-Type Hole-Transporting Material for Dopant-Free Perovskite Solar Cells

G. ShaoD. WangZ. K. ZhouH. J. YuT. Kang  et al.

Angewandte Chemie (International ed. in English). 2024. DOI : 10.1002/anie.202411217.

Micro-homogeneity of lateral energy landscapes governs the performance in perovskite solar cells

P. SHIB. DingD. JinM. OnerX. Zhang  et al.

NATURE COMMUNICATIONS. 2024. DOI : 10.1038/s41467-024-53953-4.

Cation reactivity inhibits perovskite degradation in efficient and stable solar modules

Y. DingB. DingP. ShiJ. Romano-DeGeaY. Li  et al.

Science (New York, N.Y.). 2024. DOI : 10.1126/science.ado6619.

Smart Photovoltaic Windows for Next-Generation Energy-Saving Buildings

Q. WangZ. NaL. YuS. DaiM. Nazeeruddin  et al.

ADVANCED SCIENCE. 2024. DOI : 10.1002/advs.202407177.

Ultra-uniform perovskite crystals formed in the presence of tetrabutylammonium bistriflimide afford efficient and stable perovskite solar cells

J. LimA. I. RafiehN. ShibayamaJ. XiaJ. N. Audinot  et al.

Energy & Environmental Science. 2024. DOI : 10.1039/d4ee01841a.

Anomalous Electroluminescence Characteristics of Perovskite Modules

H. WuJ. ZhangY. ZhangF. CaoZ. Qiu  et al.

ACS applied materials & interfaces. 2024. DOI : 10.1021/acsami.4c03397.

Controlling Tin Halide Perovskite Oxidation Dynamics in Solution for Perovskite Optoelectronic Devices

S. TianG. LiR. C. Turnell-RitsonZ. FeiA. Bornet  et al.

Angewandte Chemie (International ed. in English). 2024. DOI : 10.1002/anie.202407193.

Demethylation strategies for spiro-OMeTAD to enhance the thermo-opto-electronic properties as potential hole transport materials in perovskite solar cells

P. I. Z. Syed MahadzirM. MottakinM. A. A. M. AbdahP. N. A. FahsyarK. Jumbri  et al.

Materials Research Express. 2024. DOI : 10.1088/2053-1591/ad6d33.

Cu(II) and Ni(II) Phthalocyanine-Based Hole-Transporting Materials for Stable Perovskite Solar Cells with Efficiencies Reaching 20.0%

J. XiaJ. Labella SantodomingoP. K. DemircioğluM. Pérez EscribanoJ. Calbo  et al.

SOLAR RRL. 2024. DOI : 10.1002/solr.202400371.

Enhancing Efficiency of Industrially-Compatible Monolithic Perovskite/Silicon Tandem Solar Cells with Dually-Mixed Self-Assembled Monolayers

C. LiY. LiY. ChenH. ZhangS.-T. Zhang  et al.

Advanced Functional Materials. 2024. DOI : 10.1002/adfm.202407805.

The predictive power of NLP models on Perovskite solar cells: BERTforPSC

N. BhatiM. NazeeruddinF. Maréchal

34th European Symposium on Computer Aided Process Engineering / 15th International Symposium on Process Systems Engineering (ESCAPE34/PSE24), Florence, Italy, 2024-06-02 - 2024-06-06.

Strain relaxation and multidentate anchoring in n-type perovskite transistors and logic circuits

R. N. BukkeO. A. SyzgantsevaM. A. SyzgantsevaK. AidinisA. Soultati  et al.

Nature Electronics. 2024. DOI : 10.1038/s41928-024-01165-5.

Stress Engineering for Mitigating Thermal Cycling Fatigue in Perovskite Photovoltaics

M. ChenY. DongY. ZhangX. ZhengG. R. McAndrews  et al.

Acs Energy Letters. 2024. DOI : 10.1021/acsenergylett.4c00988.

Catalytic Oxidation of BTX (Benzene, Toluene, and Xylene) Using Metal Oxide Perovskites

J. YuanG. LiX. LiuY. YangF. Yu  et al.

Advanced Functional Materials. 2024. DOI : 10.1002/adfm.202401281.

Machine Learning for Screening Small Molecules as Passivation Materials for Enhanced Perovskite Solar Cells

X. ZhangB. DingY. WangY. LiuG. Zhang  et al.

Advanced Functional Materials. 2024. DOI : 10.1002/adfm.202314529.

Dopant-Free Pyrene-Based Hole Transporting Material Enables Efficient and Stable Perovskite Solar Cells

X. ZhangX. LiuF. F. TiraniB. DingJ. Chen  et al.

Angewandte Chemie International Edition. 2024. DOI : 10.1002/anie.202320152.

Synergistic Redox Modulation for High-Performance Nickel Oxide-Based Inverted Perovskite Solar Modules

Y. LiuB. DingG. ZhangX. MaY. Wang  et al.

Advanced Science. 2024. DOI : 10.1002/advs.202309111.

Dopant-additive synergism enhances perovskite solar modules

B. DingY. DingJ. PengJ. Romano-deGeaL. E. K. Frederiksen  et al.

Nature. 2024. DOI : 10.1038/s41586-024-07228-z.

Heteroatom Engineering of a Dibenzo[g,p]Chrysene-Based Hole Transporting Material Provides High-Performance Perovskite Solar Cells

X. ZhangS. ZhangX. LiaoB. DingG. Rahim  et al.

Advanced Functional Materials. 2024. DOI : 10.1002/adfm.202314086.

A thermotropic liquid crystal enables efficient and stable perovskite solar modules

Y. YangC. LiuY. DingB. DingJ. Xu  et al.

Nature Energy. 2024. DOI : 10.1038/s41560-023-01444-z.

Perovskite Solar Cells: Challenges Facing Polymeric Hole Selective Materials in p-i-n Configuration

P. GanesanM. K. NazeeruddinP. Gao

ADVANCED FUNCTIONAL MATERIALS. 2024. DOI : 10.1002/adfm.202409939.

Photovoltaic or optoelectronic devices with molecular orbital stretching junctions

M. K. NazeeruddinG. PozziP. DysonM. CavazziniJ. Xia  et al.

WO2024256961 ; EP4478859 . 2024.

Covalent Organic Framework-Enhanced Metal Halide Perovskites for Selective and Sensitive Gas Sensing

W. YeM. LiG. LiL. JiangS. Tian  et al.

Advanced Functional Materials. 2024. DOI : 10.1002/adfm.202418897.

Article Organic-inorganic hybrid nature enables efficient and stable CsPbI3-based perovskite solar cells

Y. JiangT.-F. XuH.-Q. DuM. U. RothmannZ.-W. Yin  et al.

Joule. 2023. DOI : 10.1016/j.joule.2023.10.019.

Device Performance of Emerging Photovoltaic Materials (Version 4)

O. AlmoraC. I. CabreraS. Erten-ElaK. ForberichK. Fukuda  et al.

Advanced Energy Materials. 2023. DOI : 10.1002/aenm.202303173.

Steric hindrance driven passivating cations for stable perovskite solar cells with an efficiency over 24%

K. RakstysJ. XiaY. ZhangK. SiksnelyteA. Slonopas  et al.

Journal of Materials Chemistry A. 2023. DOI : 10.1039/d3ta03423b.

Poly(3-hexylthiophene)/perovskite Heterointerface by Spinodal Decomposition Enabling Efficient and Stable Perovskite Solar Cells

Y. YangQ. XiongJ. WuY. TuT. Sun  et al.

Advanced Materials. 2023. DOI : 10.1002/adma.202310800.

Neuromorphic computing based on halide perovskites

M. VasilopoulouA. R. bin Mohd YusoffY. ChaiM.-A. KourtisT. Matsushima  et al.

Nature Electronics. 2023. DOI : 10.1038/s41928-023-01082-z.

Highly Efficient and Stable FAPbI(3) Perovskite Solar Cells and Modules Based on Exposure of the (011) Facet

K. ZhangB. DingC. WangP. ShiX. Zhang  et al.

Nano-Micro Letters. 2023. DOI : 10.1007/s40820-023-01103-8.

Fully Aromatic Self-Assembled Hole-Selective Layer toward Efficient Inverted Wide-Bandgap Perovskite Solar Cells with Ultraviolet Resistance

C. LiZ. ZhangH. ZhangW. YanY. Li  et al.

Angewandte Chemie International Edition. 2023. DOI : 10.1002/anie.202315281.

All-inorganic halide perovskites for air-processed "n-i-p" monolithic perovskite/organic hybrid tandem solar cells exceeding 23% efficiency

S. S. MaliJ. V. PatilJ. A. SteeleM. K. NazeeruddinJ. H. Kim  et al.

Energy & Environmental Science. 2023. DOI : 10.1039/d3ee02763e.

Design and development of a low-cost imidazole-based hole transporting material for perovskite solar cells

F. SadeghiB. PashaeiB. N. BidehN. SabahiH. Shahroosvand  et al.

Energy Advances. 2023. DOI : 10.1039/d3ya00111c.

Influence of triphenylamine derivatives in efficient dye-sensitized/organic solar cells

A. FarokhiH. ShahroosvandF. ZistiM. PilkingtonM. K. Nazeeruddin

Journal of Materials Chemistry A. 2023. DOI : 10.1039/d3ta03585a.

Influence of an Organic Salt-Based Stabilizing Additive on Charge Carrier Dynamics in Triple Cation Perovskite Solar Cells

P. DoerflingerY. DingV. SchmidM. ArmerR. C. Turnell-Ritson  et al.

Advanced Science. 2023. DOI : 10.1002/advs.202304502.

Tuning 2D Perovskite Passivation: Impact of Electronic and Steric Effects on the Performance of 3D/2D Perovskite Solar Cells

Z. G. KarabagA. KarabagU. GunesX.-X. GaoO. A. Syzgenteva  et al.

Advanced Energy Materials. 2023. DOI : 10.1002/aenm.202302038.

Dual-protected zinc anodes for long-life aqueous zinc ion battery with bifunctional interface constructed by zwitterionic surfactants

L. TaoK. GuanR. YangZ. GuoL. Wang  et al.

Energy Storage Materials. 2023. DOI : 10.1016/j.ensm.2023.102981.

Critical analysis of decision variables for high-throughput experimentation (HTE) with perovskite solar cells

N. BhatiM. K. NazeeruddinF. Marechal

Solar Energy. 2023. DOI : 10.1016/j.solener.2023.111810.

Synthetic approaches for perovskite thin films and single-crystals

A. SoultatiM. TountasK. K. ArmadorouA. R. b. M. YusoffM. Vasilopoulou  et al.

Energy Advances. 2023. DOI : 10.1039/d3ya00098b.

Branched Fluorenylidene Derivatives with Low Ionization Potentials as Hole-Transporting Materials for Perovskite Solar Cells

A. JegoroveJ. XiaM. SteponaitisM. DaskevicieneV. Jankauskas  et al.

Chemistry Of Materials. 2023. DOI : 10.1021/acs.chemmater.3c00708.

Molecular Tailoring of Pyridine Core-Based Hole Selective Layer for Lead Free Double Perovskite Solar Cells Fabrication

P. HuangM. SheokandD. Payno ZarcenoS. KazimL. Lezama  et al.

ACS Applied Energy Materials. 2023. DOI : 10.1021/acsaem.3c01027.

Oriented nucleation in formamidinium perovskite for photovoltaics

P. ShiY. DingB. DingQ. XingT. Kodalle  et al.

Nature. 2023. DOI : 10.1038/s41586-023-06208-z.

Extending the pi-Conjugated System in Spiro-Type Hole Transport Material Enhances the Efficiency and Stability of Perovskite Solar Modules

X. LiuB. DingM. HanZ. YangJ. Chen  et al.

Angewandte Chemie International Edition. 2023. DOI : 10.1002/anie.202304350.

Foldable Hole-Transporting Materials for Merging Electronic States between Defective and Perfect Perovskite Sites

J. XiaP. LuizysM. DaskevicieneC. XiaoK. Kantminiene  et al.

Advanced Materials. 2023. DOI : 10.1002/adma.202300720.

Role of Ionic Liquids in Perovskite Solar Cells

K. ZhangX. ZhangK. G. BrooksB. DingS. Kinge  et al.

Solar Rrl. 2023. DOI : 10.1002/solr.202300115.

Co-deposition of hole-selective contact and absorber for improving the processability of perovskite solar cells

X. ZhengZ. LiY. ZhangM. ChenT. Liu  et al.

Nature Energy. 2023. DOI : 10.1038/s41560-023-01227-6.

Isomeric imidazole functionalized bithiophene-based hole transporting materials for stable perovskite solar cells

J. XiaV. JosephA. A. SutantoR. BalasaravananY. Ezhurnalai  et al.

Cell Reports Physical Science. 2023. DOI : 10.1016/j.xcrp.2023.101312.

Probing proton diffusion as a guide to environmental stability in powder-engineered FAPbI3 and CsFAPbI3 perovskites

M. P. U. HarisJ. XiaS. KazimZ. MolendaL. Hirsch  et al.

Cell Reports Physical Science. 2023. DOI : 10.1016/j.xcrp.2023.101304.

Hydrothermal Deposition of UV-Absorbing Passivation Layers for Efficient and Stable Perovskite Solar Cells

S. AL-ShuaaW. ChenK. G. BrooksB. ZhangY. Feng  et al.

Advanced Energy And Sustainability Research. 2023. DOI : 10.1002/aesr.202200203.

Transparent Liquid Crystal Hole-Transporting Material for Stable Perovskite Solar Cells

Q. Ul AinJ. XiaH. KandaI. R. AlwaniX.-X. Gao  et al.

Solar Rrl. 2023. DOI : 10.1002/solr.202200920.

Next-generation applications for integrated perovskite solar cells

A. S. R. BatiY. L. ZhongP. L. BurnM. K. NazeeruddinP. E. Shaw  et al.

Communications Materials. 2023. DOI : 10.1038/s43246-022-00325-4.

Passivating Defects of Perovskite Solar Cells with Functional Donor-Acceptor-Donor Type Hole Transporting Materials

S. Daskeviciute-GeguzieneY. ZhangK. RakstysC. XiaoJ. Xia  et al.

Advanced Functional Materials. 2023. DOI : 10.1002/adfm.202208317.

Bifunctional additive 2-amino-3-hydroxypyridine for stable and high-efficiency tin-lead perovskite solar cells

W. ChenK. SuY. HuangK. G. BrooksS. Kinge  et al.

Journal of Materials Chemistry C. 2022. DOI : 10.1039/d2tc04000j.

Device Performance of Emerging Photovoltaic Materials (Version 3)

O. AlmoraD. BaranG. C. BazanC. I. CabreraS. Erten-Ela  et al.

Advanced Energy Materials. 2022. DOI : 10.1002/aenm.202203313.

Molecular Electronic Study of Spiro-[cyclopenta[1,2-b:5,4-b ']dithiophene-4,9 '-fluorene] Derivatives: Route to Decent Hole-Transporting Materials

Z. ZhangW. LiS. OrlandiM. CavazziniA. M. Asiri  et al.

Journal Of Physical Chemistry C. 2022. DOI : 10.1021/acs.jpcc.2c06152.

Tuning paradigm of external stimuli driven electronic, optical and magnetic properties in hybrid perovskites and metalorganic complexes br

H. BanerjeeJ. KaurM. K. NazeeruddinS. Chakraborty

Materials Today. 2022. DOI : 10.1016/j.mattod.2022.09.008.

Asymmetrically Substituted 10H,10 ' H-9,9 '-Spirobi[acridine] Derivatives as Hole-Transporting Materials for Perovskite Solar Cells

J. XiaY. ZhangM. CavazziniS. OrlandiB. Ding  et al.

Angewandte Chemie International Edition. 2022. DOI : 10.1002/anie.202212891.

Dual-Site Synergistic Passivation for Highly Efficient and Stable Perovskite Solar Cells

W. ZhangL. HeY. MengH. KandaD. Tang  et al.

Advanced Energy Materials. 2022. DOI : 10.1002/aenm.202202189.

Zn(II) and Cu(II) tetrakis(diarylamine)phthalocyanines as hole-transporting materials for perovskite solar cells

N. KlipfelJ. XiaP. CulikS. OrlandiM. Cavazzini  et al.

Materials Today Energy. 2022. DOI : 10.1016/j.mtener.2022.101110.

Photonic nanostructures mimicking floral epidermis for perovskite solar cells

M. VasilopoulouW. J. da SilvaA. SoultatiH. P. KimB. S. Kim  et al.

Cell Reports Physical Science. 2022. DOI : 10.1016/j.xcrp.2022.101019.

Strain effects on halide perovskite solar cells

B. YangD. BogachukJ. SuoL. WagnerH. Kim  et al.

Chemical Society Reviews. 2022. DOI : 10.1039/d2cs00278g.

Charge transport materials for mesoscopic perovskite solar cells

M. VasilopoulouA. SoultatiP.-P. FilippatosA. R. b. M. YusoffM. K. Nazeeruddin  et al.

Journal of Materials Chemistry C. 2022. DOI : 10.1039/d2tc00828a.

Functionalized BODIPYs as Tailor-Made and Universal Interlayers for Efficient and Stable Organic and Perovskite Solar Cells

A. SoultatiF. NunziA. FakharuddinA. VerykiosK. K. Armadorou  et al.

Advanced Materials Interfaces. 2022. DOI : 10.1002/admi.202102324.

Robust Interfacial Modifier for Efficient Perovskite Solar Cells: Reconstruction of Energy Alignment at Buried Interface by Self-Diffusion of Dopants

L. WangJ. XiaZ. YanP. SongC. Zhen  et al.

Advanced Functional Materials. 2022. DOI : 10.1002/adfm.202204725.

Highly Efficient and Stable 2D Dion Jacobson/3D Perovskite Heterojunction Solar Cells

YuktaN. ParikhR. D. ChavanP. YadavM. K. Nazeeruddin  et al.

ACS Applied Materials & Interfaces. 2022. DOI : 10.1021/acsami.2c04455.

Modulating the Electron Transporting Properties of Subphthalocyanines for Inverted Perovskite Solar Cells

J. LabellaC. MomblonaP. CulikE. Lopez-SerranoH. Kanda  et al.

Frontiers In Chemistry. 2022. DOI : 10.3389/fchem.2022.886522.

Area-Scalable Zn2SnO4 Electron Transport Layer for Highly Efficient and Stable Perovskite Solar Modules

X. LiuY. ZhangM. ChenC. XiaoK. G. Brooks  et al.

ACS Applied Materials & Interfaces. 2022. DOI : 10.1021/acsami.1c24757.

Ultraviolet Filtration Passivator for Stable High-Efficiency Perovskite Solar Cells

M. WangG. YanK. SuW. ChenK. G. Brooks  et al.

ACS Applied Materials & Interfaces. 2022. DOI : 10.1021/acsami.2c01749.

Single-crystalline TiO2 nanoparticles for stable and efficient perovskite modules

Y. DingB. DingH. KandaO. J. UsioboT. Gallet  et al.

Nature Nanotechnology. 2022. DOI : 10.1038/s41565-022-01108-1.

Mixed cation 2D perovskite: a novel approach for enhanced perovskite solar cell stability

M. AbuhelaiqaX.-X. GaoY. DingB. DingZ. Yi  et al.

Sustainable Energy & Fuels. 2022. DOI : 10.1039/d1se01721g.

Employing 2D-Perovskite as an Electron Blocking Layer in Highly Efficient (18.5%) Perovskite Solar Cells with Printable Low Temperature Carbon Electrode

S. ZouhairS.-M. YooD. BogachukJ. P. HerterichJ. Lim  et al.

Advanced Energy Materials. 2022. DOI : 10.1002/aenm.202200837.

Deconvolution of Light-Induced Ion Migration Phenomena by Statistical Analysis of Cathodoluminescence in Lead Halide-Based Perovskites

E. ShirzadiN. TappyF. AnsariM. K. NazeeruddinA. Hagfeldt  et al.

Advanced Science. 2022. DOI : 10.1002/advs.202103729.

High-efficiency perovskite photovoltaic modules achieved via cesium doping

X. LiuM. ChenY. ZhangJ. XiaJ. Yin  et al.

Chemical Engineering Journal. 2022. DOI : 10.1016/j.cej.2021.133713.

Three-terminal perovskite/integrated back contact silicon tandem solar cells under low light intensity conditions

H. KandaV. Dan MihailetchiM.-E. Gueunier-FarretJ.-P. KleiderZ. Djebbour  et al.

Interdisciplinary Materials. 2022. DOI : 10.1002/idm2.12006.

Composition and Interface Engineering of High Performing Perovskite Solar Cells

M. A. M. E. Abuhelaiqa / M. K. Nazeeruddin (Dir.)

Lausanne, EPFL, 2022. DOI : 10.5075/epfl-thesis-8996.

Revealing Weak Dimensional Confinement Effects in Excitonic Silver/Bismuth Double Perovskites

M. PantalerV. Diez-CabanesV. I. E. QuelozA. SutantoP. A. Schouwink  et al.

Jacs Au. 2022. DOI : 10.1021/jacsau.1c00429.

Investigation in Crystal Growth/Morphology and Interface Engineering of Perovskite Solar Cells by Different Deposition Methods

N. I. D. Klipfel / M. K. Nazeeruddin (Dir.)

Lausanne, EPFL, 2022. DOI : 10.5075/epfl-thesis-9525.

In Situ Graded Passivation via Porphyrin Derivative with Enhanced Photovoltage and Fill Factor in Perovskite Solar Cells

K. SuW. ChenY. HuangG. YangK. G. Brooks  et al.

Solar Rrl. 2022. DOI : 10.1002/solr.202100964.

Cycloaddition of Biogas-Contained CO2 into Epoxides via Ionic Polymer Catalysis: An Experimental and Process Simulation Study

X. HuF. D. BobbinkA. van MuydenM. T. AmiriA. Bonnin  et al.

Industrial & Engineering Chemistry Research. 2021. DOI : 10.1021/acs.iecr.1c03895.

Effect of illumination and applied potential on the electrochemical impedance spectra in triple cation (FA/MA/Cs) 3D and 2D/3D perovskite solar cells

S. M. AbdulrahimZ. AhmadM. Q. MehmoodS. PaekJ. Bhadra  et al.

Journal of Electroanalytical Chemistry. 2021. DOI : 10.1016/j.jelechem.2021.115800.

The emergence of concentrator photovoltaics for perovskite solar cells

P. SadhukhanA. RoyP. SenguptaS. DasT. K. Mallick  et al.

Applied Physics Reviews. 2021. DOI : 10.1063/5.0062671.

Phase-Pure Quasi-2D Perovskite by Protonation of Neutral Amine

M. DessimozS.-M. YooH. KandaC. IgciH. Kim  et al.

The Journal of Physical Chemistry Letters. 2021. DOI : 10.1021/acs.jpclett.1c03143.

Highly Planar Benzodipyrrole-Based Hole Transporting Materials with Passivation Effect for Efficient Perovskite Solar Cells

C. IgciH. KandaS.-M. YooA. A. SutantoO. A. Syzgantseva  et al.

Solar Rrl. 2021. DOI : 10.1002/solr.202100667.

Two in One: A Dinuclear Ru(II) Complex for Deep-Red Light-Emitting Electrochemical Cells and as an Electrochemiluminescence Probe for Organophosphorus Pesticides

B. PashaeiH. ShahroosvandM. MoharramnezhadM. A. KamyabiH. Bakhshi  et al.

Inorganic Chemistry. 2021. DOI : 10.1021/acs.inorgchem.1c02154.

Device Performance of Emerging Photovoltaic Materials (Version 2)

O. AlmoraD. BaranG. C. BazanC. BergerC. Cabrera  et al.

Advanced Energy Materials. 2021. DOI : 10.1002/aenm.202102526.

Mechanistic Insights into the Role of the Bis(trifluoromethanesulfonyl) imide Ion in Coevaporated p-i-n Perovskite Solar Cells

N. KlipfelH. KandaA. A. SutantoM. MensiC. Igci  et al.

ACS Applied Materials & Interfaces. 2021. DOI : 10.1021/acsami.1c10117.

Tuning structural isomers of phenylenediammonium to afford efficient and stable perovskite solar cells and modules

C. LiuY. YangK. RakstysA. MahataM. Franckevicius  et al.

Nature Communications. 2021. DOI : 10.1038/s41467-021-26754-2.

Improving the Long-Term Stability of Doped Spiro-Type Hole-Transporting Materials in Planar Perovskite Solar Cells

J. Urieta-MoraI. Garcia-BenitoL. A. IllicachiJ. CalboJ. Arago  et al.

Solar Rrl. 2021. DOI : 10.1002/solr.202100650.

Enhancing Algae Biomass Production by Using Dye-Sensitized Solar Cells as Filters

E. DamergiP. QinS. SharmaM. K. NazeeruddinC. Ludwig

ACS Sustainable Chemistry & Engineering. 2021. DOI : 10.1021/acssuschemeng.1c03780.

Cesium-doped Ti3C2Tx MXene for efficient and thermally stable perovskite solar cells

A. S. R. BatiA. A. SutantoM. HaoM. BatmunkhY. Yamauchi  et al.

Cell Reports Physical Science. 2021. DOI : 10.1016/j.xcrp.2021.100598.

A review on two-dimensional (2D) and 2D-3D multidimensional perovskite solar cells: Perovskites structures, stability, and photovoltaic performances

E.-B. KimM. S. AkhtarH.-S. ShinS. AmeenM. K. Nazeeruddin

Journal Of Photochemistry And Photobiology C-Photochemistry Reviews. 2021. DOI : 10.1016/j.jphotochemrev.2021.100405.

Advances in solution-processed near-infrared light-emitting diodes

M. VasilopoulouA. FakharuddinF. Pelayo Garcia de ArquerD. G. GeorgiadouH. Kim  et al.

Nature Photonics. 2021. DOI : 10.1038/s41566-021-00855-2.

Subphthalocyanine-based electron-transport materials for perovskite solar cells

J. LabellaC. MomblonaN. KlipfelH. KandaS. Kinge  et al.

Journal of Materials Chemistry C. 2021. DOI : 10.1039/d1tc02600c.

Cut from the Same Cloth: Enamine-Derived Spirobifluorenes as Hole Transporters for Perovskite Solar Cells

D. VaitukaityteC. MomblonaK. RakstysA. A. SutantoB. Ding  et al.

Chemistry Of Materials. 2021. DOI : 10.1021/acs.chemmater.1c01486.

Fiber-Shaped Electronic Devices

A. FakharuddinH. LiF. Di GiacomoT. ZhangN. Gasparini  et al.

Advanced Energy Materials. 2021. DOI : 10.1002/aenm.202101443.

Expanded Phase Distribution in Low Average Layer-Number 2D Perovskite Films: Toward Efficient Semitransparent Solar Cells

Y. YangC. LiuH. KandaY. DingH. Huang  et al.

Advanced Functional Materials. 2021. DOI : 10.1002/adfm.202104868.

Dopant‐Free Hole Transport Materials Afford Efficient and Stable Inorganic Perovskite Solar Cells and Modules

C. LiuC. IgciY. YangO. SyzgantsevaM. A. Syzgantseva  et al.

Angewandte Chemie International Edition. 2021. DOI : 10.1002/anie.202107774.

Selenophene-Based Hole-Transporting Materials for Perovskite Solar Cells

L. A. IllicachiJ. Urieta-MoraC. MomblonaA. Molina-OntoriaJ. Calbo  et al.

Chempluschem. 2021. DOI : 10.1002/cplu.202100208.

Stable Perovskite Solar Cells Using Molecularly Engineered Functionalized Oligothiophenes as Low-Cost Hole-Transporting Materials

V. JosephA. A. SutantoC. IgciO. A. SyzgantsevaV. Jankauskas  et al.

Small. 2021. DOI : 10.1002/smll.202100783.

Observation of large Rashba spin-orbit coupling at room temperature in compositionally engineered perovskite single crystals and application in high performance photodetectors

A. R. b. M. YusoffA. MahataM. VasilopoulouH. UllahB. Hu  et al.

Materials Today. 2021. DOI : 10.1016/j.mattod.2021.01.027.

Piezo-electric and -phototronic effects of perovskite 2D|3D heterostructures

C. W. JangH. KimM. K. NazeeruddinD. H. ShinS.-H. Choi

Nano Energy. 2021. DOI : 10.1016/j.nanoen.2021.105899.

Organic-inorganic upconversion nanoparticles hybrid in dye-sensitized solar cells

A. A. AnsariM. K. NazeeruddinM. M. Tavakoli

Coordination Chemistry Reviews. 2021. DOI : 10.1016/j.ccr.2021.213805.

Isomeric Carbazole-Based Hole-Transporting Materials: Role of the Linkage Position on the Photovoltaic Performance of Perovskite Solar Cells

A. A. SutantoV. JosephC. IgciO. A. SyzgantsevaM. A. Syzgantseva  et al.

Chemistry Of Materials. 2021. DOI : 10.1021/acs.chemmater.1c00335.

SnO2/TiO2 Electron Transporting Bilayers: A Route to Light Stable Perovskite Solar Cells

M. AbuhelaiqaN. ShibayamaX.-X. GaoH. KandaM. K. Nazeeruddin

ACS Applied Energy Materials. 2021. DOI : 10.1021/acsaem.0c03185.

Two-Step Thermal Annealing: An Effective Route for 15 % Efficient Quasi-2D Perovskite Solar Cells

V. RomanoL. NajafiA. A. SutantoG. SchileoV. Queloz  et al.

Chempluschem. 2021. DOI : 10.1002/cplu.202000777.

Influence of Donor Groups on Benzoselenadiazole-Based Dopant-Free Hole Transporting Materials for High Performance Perovskite Solar Cells

AbdullahE.-B. KimM. S. AkhtarH.-S. ShinS. Ameen  et al.

ACS Applied Energy Materials. 2021. DOI : 10.1021/acsaem.0c02264.

Influence of Donor Groups on Benzoselenadiazole-Based Dopant-Free Hole Transporting Materials for High Performance Perovskite Solar Cells

AbdullahE.-B. KimM. S. AkhtarH.-S. ShinS. Ameen  et al.

ACS Applied Energy Materials. 2021. DOI : 10.1021/acsaem.0c02264.

The Status Quo of Rashba Phenomena in Organic-Inorganic Hybrid Perovskites

S. ChakrabortyM. K. Nazeeruddin

The Journal of Physical Chemistry Letters. 2021. DOI : 10.1021/acs.jpclett.0c02497.

Fluorene-based enamines as low-cost and dopant-free hole transporting materials for high performance and stable perovskite solar cells

S. DaskeviciuteC. MomblonaK. RakstysA. A. SutantoM. Daskeviciene  et al.

Journal of Materials Chemistry A. 2021. DOI : 10.1039/d0ta08452b.

Interfacial Engineering: The Key to Boost Perovskite Solar Cells Performance and Stability

A. A. Sutanto / M. K. Nazeeruddin (Dir.)

Lausanne, EPFL, 2021. DOI : 10.5075/epfl-thesis-9644.

Photoinduced processes in hybrid perovskite for optoelectronics

V. I. E. Queloz / M. K. NazeeruddinG. Grancini (Dir.)

Lausanne, EPFL, 2021. DOI : 10.5075/epfl-thesis-9242.

Assessing mobile ions contributions to admittance spectra and current-voltage characteristics of 3D and 2D/3D perovskite solar cells

A. S. ShikohS. PaekA. Y. PolyakovN. B. SmirnovI. Shchemerov  et al.

Solar Energy Materials And Solar Cells. 2020. DOI : 10.1016/j.solmat.2020.110670.

Surface, Interface, and Bulk Electronic and Chemical Properties of Complete Perovskite Solar Cells: Tapered Cross-Section Photoelectron Spectroscopy, a Novel Solution

C. DasM. WusslerT. HellmannT. MayerI. Zimmermann  et al.

ACS Applied Materials & Interfaces. 2020. DOI : 10.1021/acsami.0c11484.

Gradient band structure: high performance perovskite solar cells using poly(bisphenol A anhydride-co-1,3-phenylenediamine)

H. KandaN. ShibayamaM. AbuhelaiqaS. PaekR. Kaneko  et al.

Journal of Materials Chemistry A. 2020. DOI : 10.1039/d0ta05496h.

Reducing Amplified Spontaneous Emission Threshold in CsPbBr3 Quantum Dot Films by Controlling TiO2 Compact Layer

S. M. H. QaidF. H. AlharbiI. BedjaM. K. NazeeruddinA. S. Aldwayyan

Nanomaterials. 2020. DOI : 10.3390/nano10081605.

Increasing efficiency of perovskite solar cells using low concentrating photovoltaic systems (vol 4, pg 528, 2020)

H. BaigH. KandaA. M. AsiriM. K. NazeeruddinT. Mallick

Sustainable Energy & Fuels. 2020. DOI : 10.1039/d0se90048f.

Atomic Layer-Deposited Aluminum Oxide Hinders Iodide Migration and Stabilizes Perovskite Solar Cells

C. DasM. KotT. HellmannC. WittichE. Mankel  et al.

Cell Reports Physical Science. 2020. DOI : 10.1016/j.xcrp.2020.100112.

Benzothiadiazole Aryl-amine Based Materials as Efficient Hole Carriers in Perovskite Solar Cells

C. Rodriguez-SecoM. MendezC. Roldan-CarmonaL. CabauA. M. Asiri  et al.

ACS Applied Materials & Interfaces. 2020. DOI : 10.1021/acsami.0c07586.

Proton-transfer-induced 3D/2D hybrid perovskites suppress ion migration and reduce luminance overshoot

H. KimJ. S. KimJ.-M. HeoM. PeiI.-H. Park  et al.

Nature Communications. 2020. DOI : 10.1038/s41467-020-17072-0.

D-pi-A-Type Triazatruxene-Based Dopant-Free Hole Transporting Materials for Efficient and Stable Perovskite Solar Cells

C. IgciS. PaekK. RakstysH. KandaN. Shibayama  et al.

Solar Rrl. 2020. DOI : 10.1002/solr.202000173.

Detection of voltage pulse width effect on charge accumulation in PSCs EFISHG measurement

Z. AhmadD. TaguchiS. PaekA. MishraJ. Bhadra  et al.

Results In Physics. 2020. DOI : 10.1016/j.rinp.2020.103063.

Spatial Charge Separation as the Origin of Anomalous Stark Effect in Fluorous 2D Hybrid Perovskites

V. I. E. QuelozM. E. F. BoudubanI. Garcia-BenitoA. FedorovskiyS. Orlandi  et al.

Advanced Functional Materials. 2020. DOI : 10.1002/adfm.202000228.

Tapered Cross-Section Photoelectron Spectroscopy of State-of-the-Art Mixed Ion Perovskite Solar Cells: Band Bending Profile in the Dark, Photopotential Profile Under Open Circuit Illumination, and Band Diagram

M. WusslerT. MayerC. DasE. MankelT. Hellmann  et al.

Advanced Functional Materials. 2020. DOI : 10.1002/adfm.201910679.

Zero-dimensional hybrid iodobismuthate derivatives: from structure study to photovoltaic application

Y. ZhangF. Fadaei TiraniP. PattisonK. Schenk-JossZ. Xiao  et al.

Dalton Transactions. 2020. DOI : 10.1039/d0dt00015a.

Carbazole-Terminated Isomeric Hole-Transporting Materials for Perovskite Solar Cells

K. RakstysS. PaekA. DrevilkauskaiteH. KandaS. Daskeviciute  et al.

ACS Applied Materials & Interfaces. 2020. DOI : 10.1021/acsami.9b23495.

A hysteresis-free perovskite transistor with exceptional stability through molecular cross-linking and amine-based surface passivation

H. P. KimM. VasilopoulouH. UllahS. BibiA. E. X. Gavim  et al.

Nanoscale. 2020. DOI : 10.1039/c9nr10745b.

Band-bending induced passivation: high performance and stable perovskite solar cells using a perhydropoly(silazane) precursor

H. KandaN. ShibayamaA. J. HuckabaY. LeeS. Paek  et al.

Energy & Environmental Science. 2020. DOI : 10.1039/c9ee02028d.

Doped but Stable: Spirobisacridine Hole Transporting Materials for Hysteresis-Free and Stable Perovskite Solar Cells

N. DrigoC. Roldan-CarmonaM. FranckeviciusK.-H. LinR. Gegevicius  et al.

Journal Of The American Chemical Society. 2020. DOI : 10.1021/jacs.9b07166.

Molecular engineering of functional materials for optoelectronic applications

N. Drigo / M. K. Nazeeruddin (Dir.)

Lausanne, EPFL, 2020. DOI : 10.5075/epfl-thesis-7295.

Consensus statement for stability assessment and reporting for perovskite photovoltaics based on ISOS procedures

M. V. KhenkinE. A. KatzA. AbateG. BardizzaJ. J. Berry  et al.

Nature Energy. 2020. DOI : 10.1038/s41560-019-0529-5.

Getting the Right Twist: Influence of Donor-Acceptor Dihedral Angle on Exciton Kinetics and Singlet-Triplet Gap in Deep Blue Thermally Activated Delayed Fluorescence Emitter

S. WeissenseelN. A. DrigoL. G. KudriashovaM. SchmidT. Morgenstern  et al.

Journal Of Physical Chemistry C. 2019. DOI : 10.1021/acs.jpcc.9b08269.

Dimensionally Engineered Perovskite Heterostructure for Photovoltaic and Optoelectronic Applications

S. HeoG. SeoK. T. ChoY. LeeS. Paek  et al.

Advanced Energy Materials. 2019. DOI : 10.1002/aenm.201902470.

Synthesis of Pure Brookite Nanorods in a Nonaqueous Growth Environment

M. HezamS. M. H. QaidI. M. BedjaF. AlharbiM. K. Nazeeruddin  et al.

Crystals. 2019. DOI : 10.3390/cryst9110562.

Enhanced Interfacial Binding and Electron Extraction Using Boron-Doped TiO2 for Highly Efficient Hysteresis-Free Perovskite Solar Cells

X. ShiY. DingS. ZhouB. ZhangM. Cai  et al.

Advanced Science. 2019. DOI : 10.1002/advs.201901213.

Multiarm and Substituent Effects on Charge Transport of Organic Hole Transport Materials

K.-H. LinA. PrljL. YaoN. DrigoH.-H. Cho  et al.

Chemistry of Materials. 2019. DOI : 10.1021/acs.chemmater.9b00438.

Perovskite Solar Cells: 18% Efficiency Using Zn(II) and Cu(II) Octakis(diarylamine)phthalocyanines as Hole-Transporting Materials

K. T. ChoM. CavazziniK. RakstysS. OrlandiS. Paek  et al.

ACS Applied Energy Materials. 2019. DOI : 10.1021/acsaem.9b00637.

Preserving Porosity of Mesoporous Metal-Organic Frameworks through the Introduction of Polymer Guests

L. PengS. YangS. JawaheryS. M. MoosaviA. J. Huckaba  et al.

Journal of the American Chemical Society. 2019. DOI : 10.1021/jacs.9b05967.

Micellization behavior of bile salt with pluronic (F-127) and synthesis of silver nanoparticles in a mixed system

M. A. RubN. AzumA. M. AsiriA. KhanK. A. Alamry  et al.

Journal Of Physical Organic Chemistry. 2019. DOI : 10.1002/poc.3964.

Application of a Tetra-TPD-Type Hole-Transporting Material Fused by a Troger's Base Core in Perovskite Solar Cells

T. BraukylaR. XiaT. MalinauskasM. DaskevicieneA. Magomedov  et al.

Solar Rrl. 2019. DOI : 10.1002/solr.201900224.

Stable perovskite solar cells using tin acetylacetonate based electron transporting layers

M. AbuhelaiqaS. PaekY. LeeK. T. ChoS. Heo  et al.

Energy & Environmental Science. 2019. DOI : 10.1039/c9ee00453j.

Designing Human Assisted Wireless Sensor and Robot Networks Using Probabilistic Model Checking

S. MuhammadN. MohammadA. BasharM. A. Khan

Journal of Intelligent & Robotic Systems. 2019. DOI : 10.1007/s10846-018-0901-x.

Copper sulfide nanoparticles as hole-transporting-material in a fully-inorganic blocking layers n-i-p perovskite solar cells: Application and working insights

J. TiradoC. Roldan-CarmonaF. A. Munoz-GuerreroG. Bonilla-ArboledaM. Ralaiarisoa  et al.

Applied Surface Science. 2019. DOI : 10.1016/j.apsusc.2019.01.289.

Retarding Thermal Degradation in Hybrid Perovskites by Ionic Liquid Additives

R. XiaZ. FeiN. DrigoF. D. BobbinkZ. Huang  et al.

Advanced Functional Materials. 2019. DOI : 10.1002/adfm.201902021.

Saddle-like, π-conjugated, cyclooctatetrathiophene-based, hole-transporting material for perovskite solar cells

J. Urieta-MoraI. García-BenitoI. ZimmermannJ. AragóJ. Calbo  et al.

Journal of Materials Chemistry C. 2019. DOI : 10.1039/C9TC00437H.

Auto-passivation of crystal defects in hybrid imidazolium/methylammonium lead iodide films by fumigation with methylamine affords high efficiency perovskite solar cells

Y. ZhangG. GranciniZ. FeiE. ShirzadiX. Liu  et al.

Nano Energy. 2019. DOI : 10.1016/j.nanoen.2019.01.027.

ArASL: Arabic Alphabets Sign Language Dataset

G. LatifN. MohammadJ. AlghazoR. AlKhalafR. AlKhalaf

Data in Brief. 2019. DOI : 10.1016/j.dib.2019.103777.

Non‐Planar and Flexible Hole‐Transporting Materials from Bis‐Xanthene and Bis‐Thioxanthene Units for Perovskite Solar Cells

J. Urieta‐MoraI. García‐BenitoI. ZimmermannJ. AragóP. D. García‐Fernández  et al.

Helvetica Chimica Acta. 2019. DOI : 10.1002/hlca.201900056.

Molecular engineering of enamine-based small organic compounds as hole-transporting materials for perovskite solar cells

M. DaskevicieneS. PaekA. MagomedovK. T. ChoM. Saliba  et al.

Journal of Materials Chemistry C. 2019. DOI : 10.1039/c8tc06297h.

Stability in 3D and 2D/3D hybrid perovskite solar cells studied by EFISHG and IS techniques under light and heat soaking

Z. AhmadT. NomaS. PaekK. T. ChoD. Taguchi  et al.

Organic Electronics. 2019. DOI : 10.1016/j.orgel.2018.12.009.

Mixed Dimensional 2D/3D Hybrid Perovskite Absorbers: The Future of Perovskite Solar Cells?

A. KrishnaS. GottisM. K. NazeeruddinF. Sauvage

Advanced Functional Materials. 2019. DOI : 10.1002/adfm.201806482.

Inkjet-Printed Mesoporous TiO2 and Perovskite Layers for High Efficiency Perovskite Solar Cells

A. J. HuckabaY. LeeR. XiaS. PaekV. C. Bassetto  et al.

Energy Technology. 2019. DOI : 10.1002/ente.201800905.

Optoelectronic device comprising guanidinium in the organic-inorganic perovskite

A. Z. D. JodlowskiC. Roldan CarmonaG. De Miguel RojasL. Camacho DelgadoM. K. Nazeeruddin

WO2019097087 ; EP3486960 . 2019.

Degradation analysis in mixed (MAPbI(3) and MAPbBr(3)) perovskite solar cells under thermal stress

Z. AhmadA. S. ShikohS. PaekM. K. NazeeruddinS. A. Al-Muhtaseb  et al.

Journal Of Materials Science-Materials In Electronics. 2019. DOI : 10.1007/s10854-018-0403-4.

Enhanced MR Image Classification Using Hybrid Statistical and Wavelets Features

G. LatifD. N. F. A. IskandarJ. M. AlghazoN. Mohammad

Ieee Access. 2019. DOI : 10.1109/ACCESS.2018.2888488.

One-dimensional facile growth of MAPbI(3) perovskite micro-rods

A. MishraZ. AhmadF. TouatiR. A. ShakoorM. K. Nazeeruddin

Rsc Advances. 2019. DOI : 10.1039/c9ra00200f.

Dimensional tailoring of hybrid perovskites for photovoltaics

G. GranciniM. K. Nazeeruddin

Nature Reviews Materials. 2019. DOI : 10.1038/s41578-018-0065-0.

A new cross-linkable 9,10-diphenylanthracene derivative as a wide bandgap host for solution-processed organic light-emitting diodes

R. K. HallaniV. Fallah HamidabadiA. J. HuckabaG. GallianiA. Babaei  et al.

Journal of Materials Chemistry C. 2018. DOI : 10.1039/c8tc05013a.

Pushing the limit of Cs incorporation into FAPbBr3 perovskite to enhance solar cells performances

A. A. SutantoV. I. E. QuelozI. Garcia-BenitoK. LaasonenB. Smit  et al.

APL Materials. 2018. DOI : 10.1063/1.5087246.

Dimensionality engineering of hybrid halide perovskite light absorbers

P. GaoA. R. B. M. YusoffM. K. Nazeeruddin

Nature Communications. 2018. DOI : 10.1038/s41467-018-07382-9.

Design of cyclopentadithiophene-based small organic molecules as hole selective layers for perovskite solar cells

L. CalioS. KazimM. SaladoI. ZimmermannM. K. Nazeeruddin  et al.

Sustainable Energy & Fuels. 2018. DOI : 10.1039/c8se00119g.

All that glitters is not gold: Recent progress of alternative counter electrodes for perovskite solar cells

L. LiangY. CaiX. LiM. K. NazeeruddinP. Gao

Nano Energy. 2018. DOI : 10.1016/j.nanoen.2018.07.049.

Pyridination of hole transporting material in perovskite solar cells questions the long-term stability

A. MagomedovE. KasparaviciusK. RakstysS. PaekN. Gasilova  et al.

Journal of Materials Chemistry C. 2018. DOI : 10.1039/c8tc02242a.

Efficient Planar Perovskite Solar Cells Using Passivated Tin Oxide as an Electron Transport Layer

Y. LeeS. LeeG. SeoS. PaekA. J. Huckaba  et al.

Advanced Science. 2018. DOI : 10.1002/advs.201800130.

Selective growth of layered perovskites for stable and efficient photovoltaics

K. T. ChoG. GranciniY. LeeE. OveisiJ. Ryu  et al.

Energy & Environmental Science. 2018. DOI : 10.1039/c7ee03513f.

A Facile Preparative Route of Nanoscale Perovskites over Mesoporous Metal Oxide Films and Their Applications to Photosensitizers and Light Emitters

H. J. LeeK. T. ChoS. PaekY. LeeA. J. Huckaba  et al.

Advanced Functional Materials. 2018. DOI : 10.1002/adfm.201803801.

Frontiers, opportunities, and challenges in perovskite solar cells: A critical review

M. I. H. AnsariA. QurashiM. K. Nazeeruddin

Journal Of Photochemistry And Photobiology C-Photochemistry Reviews. 2018. DOI : 10.1016/j.jphotochemrev.2017.11.002.

Composition and Interface Engineering of Organic-Inorganic Hybrid Perovskites to Improve Photovoltaic Performance and Stability

K. T. Cho / M. K. NazeeruddinM. Graetzel (Dir.)

Lausanne, EPFL, 2018. DOI : 10.5075/epfl-thesis-9071.

Cyclometalated Ruthenium Complexes for Dye-Sensitized Solar Cells

S. Aghazada / M. K. NazeeruddinM. Graetzel (Dir.)

Lausanne, EPFL, 2018. DOI : 10.5075/epfl-thesis-8298.

Charge-Transporting Materials for Perovskite Solar Cells

S. AmeenM. S. AkhtarH.-S. ShinM. K. Nazeeruddin

Materials For Sustainable Energy; San Diego: ELSEVIER ACADEMIC PRESS INC, 2018. p. 185 - 246.

Compositional Characterization of Organo-Lead tri-Halide Perovskite Solar Cells

P. Gratia / M. K. NazeeruddinM. Graetzel (Dir.)

Lausanne, EPFL, 2018. DOI : 10.5075/epfl-thesis-8410.

An Unsymmetrical, Push-Pull Porphyrazine for Dye-Sensitized Solar Cells

J. Fernandez-ArizaM. UrbaniM. GraetzelM. Salome Rodriguez-MorgadeM. K. Nazeeruddin  et al.

Chemphotochem. 2017. DOI : 10.1002/cptc.201600004.

Investigation on the Interface Modification of TiO2 Surfaces by Functional Co-Adsorbents for High-Efficiency Dye-Sensitized Solar Cells

A. K. ChandiranS. M. ZakeeruddinR. Humphry-BakerM. K. NazeeruddinM. Graetzel  et al.

Chemphyschem. 2017. DOI : 10.1002/cphc.201700486.

Pyridyl- and Picolinic Acid Substituted Zinc(II) Phthalocyanines for Dye-Sensitized Solar Cells

J. Suanzes PitaM. UrbaniG. BottariM. InceS. A. Kumar  et al.

Chempluschem. 2017. DOI : 10.1002/cplu.201700048.

Enhanced charge collection with passivation of the tin oxide layer in planar perovskite solar cells

Y. LeeS. PaekK. T. ChoE. OveisiP. Gao  et al.

Journal of Materials Chemistry A. 2017. DOI : 10.1039/c7ta04128d.

Migration of cations induces reversible performance losses over day​/night cycling in perovskite solar cells

K. DomanskiB. RooseT. MatsuiM. SalibaS.-H. Turren-Cruz  et al.

Energy & Environmental Science. 2017. DOI : 10.1039/C6EE03352K.

Enhanced electronic properties in mesoporous TiO2 via lithium doping for high-efficiency perovskite solar cells

F. GiordanoA. AbateJ. P. C. BaenaM. SalibaT. Matsui  et al.

Nature Communications. 2016. DOI : 10.1038/ncomms10379.

Monolithic perovskite/silicon-heterojunction tandem solar cells processed at low temperature

S. AlbrechtM. SalibaJ. P. C. BaenaF. LangL. Kegelmann  et al.

Energy & Environmental Science. 2016. DOI : 10.1039/c5ee02965a.

Growth Engineering of CH3NH3PbI3 Structures for High-Efficiency Solar Cells

M. I. DarM. Abdi-JalebiN. AroraM. GraetzelM. K. Nazeeruddin

Advanced Energy Materials. 2016. DOI : 10.1002/aenm.201501358.

Thieno[3,4-b]pyrazine as an Electron Deficient pi-Bridge in D-A-pi-A DSCs

N. P. LiyanageA. YellaM. NazeeniddinM. GraetzelJ. H. Delcamp

ACS Applied Materials & Interfaces. 2016. DOI : 10.1021/acsami.5b12503.

Inverted solar cell and process for producing the same

M. K. NazeeruddinM. GraetzelH. J. BolinkO. MalinkiewiczA. Soriano Portillo

PL3044817 ; ES2907076 ; EP3044817 ; DK3044817 ; EP3044817 ; US10665800 ; JP6526013 ; CN105900255 ; JP2016532314 ; CN105900255 ; US2016226011 ; EP3044817 ; WO2015036905 ; EP2846371 . 2016.

Introducing rigid pi-conjugated peripheral substituents in phthalocyanines for DSSCs

L. TejerinaE. CaballeroM. Victoria Martinez-DiazM. K. NazeeruddinM. Gratzel  et al.

Journal Of Porphyrins And Phthalocyanines. 2016. DOI : 10.1142/S1088424616501121.

Additive-Free Transparent Triarylamine-Based Polymeric Hole-Transport Materials for Stable Perovskite Solar Cells

T. MatsuiI. PetrikyteT. MalinauskasK. DomanskiM. Daskeviciene  et al.

ChemSusChem. 2016. DOI : 10.1002/cssc.201600762.

Photodetector

T. MoehlM. K. NazeeruddinM. GrätzelJ.-h. ImN.-g. Park  et al.

US2017301479 ; WO2016038501 ; WO2016038501 . 2016.

Ligand Engineering for the Efficient Dye-Sensitized Solar Cells with Ruthenium Sensitizers and Cobalt Electrolytes

S. AghazadaP. GaoA. YellaG. MarottaT. Moehl  et al.

Inorganic Chemistry. 2016. DOI : 10.1021/acs.inorgchem.6b00842.

Solar cell and process for producing the same

Y. AswaniM. K. NazeeruddinM. Graetzel

KR102258500 ; JP6616291 ; AU2014285760 ; CN105493213 ; US10332689 ; EP3017456 ; EP3017456 ; AU2014285760 ; JP2016530703 ; US2016141112 ; EP3017456 ; CN105493213 ; KR20160029790 ; WO2015001459 ; EP2822009 . 2016.

A Computational and Experimental Study of Thieno[3,4-b]thiophene as a Proaromatic pi-Bridge in Dye-Sensitized Solar Cells

P. BrogdonF. GiordanoG. A. PunekyA. DassS. M. Zakeeruddin  et al.

Chemistry-A European Journal. 2016. DOI : 10.1002/chem.201503187.

Functional hole transport materials for optoelectronic and/or electrochemical devices

M. SalibaM. K. NazeeruddinM. GraetzelK.-h. DahmenG. Pozzi  et al.

US10727414 ; US2018190911 ; WO2016207775 ; EP3109912 . 2016.

High-Performance Perovskite Solar Cells with Enhanced Environmental Stability Based on Amphiphile-Modified CH3NH3PbI3

D. BiP. GaoR. ScopellitiE. OveisiJ. Luo  et al.

Advanced Materials. 2016. DOI : 10.1002/adma.201505255.

Cesium-containing triple cation perovskite solar cells: improved stability, reproducibility and high efficiency

M. SalibaT. MatsuiJ.-Y. SeoK. DomanskiJ.-P. Correa-Baena  et al.

Energy & Environmental Science. 2016. DOI : 10.1039/c5ee03874j.

Ionic polarization-induced current–voltage hysteresis in CH3NH3PbX3 perovskite solar cells

S. MeloniT. MoehlW. TressM. FranckevičiusM. Saliba  et al.

Nature Communications. 2016. DOI : 10.1038/ncomms10334.

Hole transporting and light absorbing material for solid state solar cells

S. M. ZakeeruddinM. GraetzelM. K. NazeeruddinP. QinA. Mishra  et al.

JP2017505995 ; EP3100313 ; US2016351342 ; CN106062984 ; KR20160114611 ; WO2015114521 ; EP2903047 . 2016.

Outdoor Performance and Stability under Elevated Temperatures and Long-Term Light Soaking of Triple-Layer Mesoporous Perovskite Photovoltaics

X. LiM. TschumiH. HanS. S. BabkairR. A. Alzubaydi  et al.

Energy Technology. 2015. DOI : 10.1002/ente.201500045.

A dopant free linear acene derivative as a hole transport material for perovskite pigmented solar cells

S. KazimF. J. RamosP. GaoM. K. NazeeruddinM. Graetzel  et al.

Energy & Environmental Science. 2015. DOI : 10.1039/c5ee00599j.

Low-temperature, solution-deposited metal chalcogenide films as highly efficient counter electrodes for sensitized solar cells

F. LiuJ. ZhuL. HuB. ZhangJ. Yao  et al.

Journal of Materials Chemistry A. 2015. DOI : 10.1039/c5ta00028a.

Improved environmental stability of organic lead trihalide perovskite-based photoactive-layers in the presence of mesoporous TiO2

F. T. F. O'MahonyY. H. LeeC. JellettS. DmitrovD. T. J. Bryant  et al.

Journal of Materials Chemistry A. 2015. DOI : 10.1039/c5ta01221j.

Silolothiophene-linked triphenylamines as stable hole transporting materials for high efficiency perovskite solar cells

A. AbateS. PaekF. GiordanoJ.-P. Correa-BaenaM. Saliba  et al.

Energy & Environmental Science. 2015. DOI : 10.1039/c5ee02014j.

Working Principles of Perovskite Photodetectors: Analyzing the Interplay Between Photoconductivity and Voltage-Driven Energy-Level Alignment

K. DomanskiW. TressT. MoehlM. SalibaM. K. Nazeeruddin  et al.

Advanced Functional Materials. 2015. DOI : 10.1002/adfm.201503188.

Unraveling the Reasons for Efficiency Loss in Perovskite Solar Cells

Y. H. LeeJ. LuoR. Humphry-BakerP. GaoM. Graetzel  et al.

Advanced Functional Materials. 2015. DOI : 10.1002/adfm.201501024.

Understanding the rate-dependent J-V hysteresis, slow time component, and aging in CH3NH3PbI3 perovskite solar cells: the role of a compensated electric field

W. TressN. MarinovaT. MoehlS. M. ZakeeruddinM. K. Nazeeruddin  et al.

Energy & Environmental Science. 2015. DOI : 10.1039/c4ee03664f.

Cationic Iridium(III) Complexes with Two Carbene-Based Cyclometalating Ligands: Cis Versus Trans Isomers

F. MontiM. G. I. La PlacaN. ArmaroliR. ScopellitiM. Graetzel  et al.

Inorganic Chemistry. 2015. DOI : 10.1021/acs.inorgchem.5b00148.

Triazatruxene-Based Hole Transporting Materials for Highly Efficient Perovskite Solar Cells

K. RakstysA. AbateM. I. DarP. GaoV. Jankauskas  et al.

Journal Of The American Chemical Society. 2015. DOI : 10.1021/jacs.5b11076.

High efficiency stable inverted perovskite solar cells without current hysteresis

C.-G. WuC.-H. ChiangZ.-L. TsengM. K. NazeeruddinA. Hagfeldt  et al.

Energy & Environmental Science. 2015. DOI : 10.1039/c5ee00645g.

Stable and Efficient Perovskite Solar Cells Based on Titania Nanotube Arrays

P. QinM. PauloseM. I. DarT. MoehlN. Arora  et al.

Small. 2015. DOI : 10.1002/smll.201501460.

Unravel the Impact of Anchoring Groups on the Photovoltaic Performances of Diketopyrrolopyrrole Sensitizers for Dye-Sensitized Solar Cells

P. GanesanA. YellaT. W. HolcombeP. GaoR. Rajalingam  et al.

ACS Sustainable Chemistry & Engineering. 2015. DOI : 10.1021/acssuschemeng.5b00332.

Targeting Ideal Dual-Absorber Tandem Water Splitting Using Perovskite Photovoltaics and CuInxGa1-xSe2 Photocathodes

J. LuoZ. LiS. NishiwakiM. SchreierM. T. Mayer  et al.

Advanced Energy Materials. 2015. DOI : 10.1002/aenm.201501520.

A Methoxydiphenylamine-Substituted Carbazole Twin Derivative: An Efficient Hole-Transporting Material for Perovskite Solar Cells

P. GratiaA. MagomedovT. MalinauskasM. DaskevicieneA. Abate  et al.

Angewandte Chemie International Edition. 2015. DOI : 10.1002/anie.201504666.

Double D-pi-A Dye Linked by 2,2'-Bipyridine Dicarboxylic Acid: Influence of para- and meta-Substituted Carboxyl Anchoring Group

P. GanesanA. K. ChandiranP. GaoR. RajalingamM. Graetzel  et al.

Chemphyschem. 2015. DOI : 10.1002/cphc.201402822.

Direct monitoring of ultrafast electron and hole dynamics in perovskite solar cells

P. PiatkowskiB. CohenF. J. RamosM. Di NunzioM. K. Nazeeruddin  et al.

Physical Chemistry Chemical Physics. 2015. DOI : 10.1039/c5cp01119a.

Electron Kinetics in Dye Sensitized Solar Cells Employing Anatase with (101) and (001) Facets

B. LaskovaT. MoehlL. KavanM. ZukalovaX. Liu  et al.

Electrochimica Acta. 2015. DOI : 10.1016/j.electacta.2015.02.016.

Predicting the Open-Circuit Voltage of CH3NH3PbI3 Perovskite Solar Cells Using Electroluminescence and Photovoltaic Quantum Efficiency Spectra: the Role of Radiative and Non-Radiative Recombination

W. TressN. MarinovaO. InganasM. K. NazeeruddinS. M. Zakeeruddin  et al.

Advanced Energy Materials. 2015. DOI : 10.1002/aenm.201400812.

Spectral splitting photovoltaics using perovskite and wideband dye-sensitized solar cells

T. KinoshitaK. NonomuraN. J. JeonF. GiordanoA. Abate  et al.

Nature Communications. 2015. DOI : 10.1038/ncomms9834.

High-efficiency and stable quasi-solid-state dye-sensitized solar cell based on low molecular mass organogelator electrolyte

L. TaoZ. HuoY. DingY. LiS. Dai  et al.

Journal of Materials Chemistry A. 2015. DOI : 10.1039/c4ta06188h.

Light Harvesting and Charge Recombination in CH3NH3PbI3 Perovskite Solar Cells Studied by Hole Transport Layer Thickness Variation

N. MarinovaW. TressR. Humphry-BakerM. I. DarV. Bojinov  et al.

Acs Nano. 2015. DOI : 10.1021/acsnano.5b00447.

Synthesis of Amphiphilic Ru-II Heteroleptic Complexes Based on Benzo[1,2-b:4,5-b]dithiophene: Relevance of the Half-Sandwich Complex Intermediate and Solvent Compatibility

M. UrbaniM. MedelS. A. KumarM. InceA. N. Bhaskarwar  et al.

Chemistry-A European Journal. 2015. DOI : 10.1002/chem.201502417.

Investigation of electrodeposited cobalt sulphide counter electrodes and their application in next-generation dye sensitized solar cells featuring organic dyes and cobalt-based redox electrolytes

S. K. SwamiN. ChaturvediA. KumarR. KapoorV. Dutta  et al.

Journal Of Power Sources. 2015. DOI : 10.1016/j.jpowsour.2014.11.003.

Highly efficient planar perovskite solar cells through band alignment engineering

J. P. C. BaenaL. SteierW. TressM. SalibaS. Neutzner  et al.

Energy & Environmental Science. 2015. DOI : 10.1039/c5ee02608c.

Investigation Regarding the Role of Chloride in Organic-Inorganic Halide Perovskites Obtained from Chloride Containing Precursors

M. I. DarN. AroraP. GaoS. AhmadM. Graetzel  et al.

Nano Letters. 2014. DOI : 10.1021/nl503279x.

Molecular Engineering of 2-Quinolinone Based Anchoring Groups for Dye-Sensitized Solar Cells

P. GanesanA. ChandiranP. GaoR. RajalingamM. Graetzel  et al.

Journal Of Physical Chemistry C. 2014. DOI : 10.1021/jp5004352.

Metal-Oxide-Free Methylammonium Lead Iodide Perovskite-Based Solar Cells: the Influence of Organic Charge Transport Layers

O. MalinkiewiczC. Roldan-CarmonaA. SorianoE. BandielloL. Camacho  et al.

Advanced Energy Materials. 2014. DOI : 10.1002/aenm.201400345.

Extended pi-Bridge in Organic Dye-Sensitized Solar Cells: the Longer, the Better?

P. GaoH. N. TsaoC. YiM. GraetzelM. K. Nazeeruddin

Advanced Energy Materials. 2014. DOI : 10.1002/aenm.201301485.

Quantum-Confined ZnO Nanoshell Photoanodes for Mesoscopic Solar Cells

A. K. ChandiranM. Abdi JalebiA. YellaM. I. DarC. Yi  et al.

Nano Letters. 2014. DOI : 10.1021/nl4039955.

Analysis of Key Electronic, Optical and Structural Parameters in Mesoscopic Solid-State Solar Cells

A. Dualeh / M. GraetzelM. K. Nazeeruddin (Dir.)

Lausanne, EPFL, 2014. DOI : 10.5075/epfl-thesis-6238.

Organohalide lead perovskites for photovoltaic applications

P. GaoM. GraetzelM. K. Nazeeruddin

Energy & Environmental Science. 2014. DOI : 10.1039/c4ee00942h.

Thermal Behavior of Methylammonium Lead-Trihalide Perovskite Photovoltaic Light Harvesters

A. DualehP. GaoS. I. SeokM. K. NazeeruddinM. Graetzel

Chemistry Of Materials. 2014. DOI : 10.1021/cm502468k.

Mixed-Organic-Cation Perovskite Photovoltaics for Enhanced Solar-Light Harvesting

N. PelletP. GaoG. GregoriT.-Y. YangM. K. Nazeeruddin  et al.

Angewandte Chemie International Edition. 2014. DOI : 10.1002/anie.201309361.

Structure-property relationships based on Hammett constants in cyclometalated iridium(III) complexes: their application to the design of a fluorine-free FIrPic-like emitter

J. FreyB. F. E. CurchodR. ScopellitiI. TavernelliU. Rothlisberger  et al.

Dalton Transactions. 2014. DOI : 10.1039/c3dt52739e.

Redox couple for electrochemical and optoelectronic devices

M. K. NazeeruddinM. GraetzelE. BaranoffF. J. KesslerJ. H. Yum  et al.

JP6568142 ; KR101957534 ; EP2678346 ; US10038150 ; EP2678346 ; US9779879 ; JP2017168450 ; CN103492402 ; JP6092787 ; CN103492401 ; US9559321 ; US2016233439 ; JP2014517807 ; JP2014513057 ; US2014060641 ; KR20140016298 ; KR20140015398 ; CN103492402 ; EP2678345 ; CN103492401 ; EP2678346 ; US2013330632 ; EP2551949 ; EP2511924 ; WO2012114315 ; WO2012114316 ; EP2492277 . 2014.

Cyclopentadithiophene-functionalized Ru(II)-bipyridine sensitizers for dye-sensitized solar cells

M. UrbaniM. MedelS. A. KumarA. K. ChandiranD. Gonzalez-Rodriguez  et al.

Polyhedron. 2014. DOI : 10.1016/j.poly.2014.05.045.

Subphthalocyanines: Active molecules for molecular photovoltaics

T. TorresO. TrukhinaA. MedinaG. ZangoJ.-H. Yum  et al.

2014. 247th National Spring Meeting of the American-Chemical-Society (ACS), Dallas, TX, MAR 16-20, 2014.

Influence of the Donor Size in D-pi-A Organic Dyes for Dye-Sensitized Solar Cells

J. YangP. GanesanJ. TeuscherT. MoehlY. J. Kim  et al.

Journal Of The American Chemical Society. 2014. DOI : 10.1021/ja500280r.

Peripherally and Axially Carboxylic Acid Substituted Subphthalocyanines for Dye-Sensitized Solar Cells

M. InceA. MedinaJ.-H. YumA. YellaC. G. Claessens  et al.

Chemistry-A European Journal. 2014. DOI : 10.1002/chem.201303639.

Branched and bulky substituted ruthenium sensitizers for dye-sensitized solar cells

M. Sanchez CarballoM. UrbaniA. K. ChandiranD. Gonzalez-RodriguezP. Vazquez  et al.

Dalton Transactions. 2014. DOI : 10.1039/c4dt01357c.

Water photolysis at 12.3% efficiency via perovskite photovoltaics and Earth-abundant catalysts

J. LuoJ.-H. ImM. T. MayerM. SchreierM. K. Nazeeruddin  et al.

Science. 2014. DOI : 10.1126/science.1258307.

Hybrid Organic-Inorganic Photovoltaics

S. AhmadM. K. NazeeruddinJ. Bisquert

Chemphyschem. 2014. DOI : 10.1002/cphc.201400098.

Host-guest blue light-emitting electrochemical cast

A. PertegasN. M. ShavaleevD. TorderaE. OrtiM. K. Nazeeruddin  et al.

Journal of Materials Chemistry C. 2014. DOI : 10.1039/c3tc31983k.

Perovskite Solar Cells Based on Nanocolumnar PlasmaDeposited ZnO Thin Films

F. J. RamosM. C. Lopez-SantosE. GuillenM. K. NazeeruddinM. Graetzel  et al.

Chemphyschem. 2014. DOI : 10.1002/cphc.201301215.

Low temperature dye-sensitized solar cells based on conformal thin zinc oxide overlayer on mesoporous insulating template by atomic layer deposition

M. Abdi-JalebiA. K. ChandiranM. K. NazeeruddinM. Graetzel

Scientia Iranica. 2014.

Yttrium-substituted nanocrystalline TiO2 photoanodes for perovskite based heterojunction solar cells

P. QinA. L. DomanskiA. K. ChandiranR. BergerH.-J. Butt  et al.

Nanoscale. 2014. DOI : 10.1039/c3nr05884k.

Near-IR Photoresponse of Ruthenium Dipyrrinate Terpyridine Sensitizers in the Dye-Sensitized Solar Cells

G. LiA. YellaD. G. BrownS. I. GorelskyM. K. Nazeeruddin  et al.

Inorganic Chemistry. 2014. DOI : 10.1021/ic5006538.

Sterically Hindered Phthalocyanines for Dye-Sensitized Solar Cells: Influence of the Distance between the Aromatic Core and the Anchoring Group

M.-E. RagoussiJ.-H. YumA. K. ChandiranM. InceG. De La Torre  et al.

Chemphyschem. 2014. DOI : 10.1002/cphc.201301118.

Low band gap S,N-heteroacene-based oligothiophenes as hole-transporting and light absorbing materials for efficient perovskite-based solar cells

P. QinH. KastM. K. NazeeruddinS. M. ZakeeruddinA. Mishra  et al.

Energy & Environmental Science. 2014. DOI : 10.1039/c4ee01220h.

Efficient Perovskite Solar Cells with 13.63% Efficiency Based on Planar Triphenylamine Hole Conductors

H. ChoiS. PaekN. LimY. H. LeeM. K. Nazeeruddin  et al.

Chemistry-A European Journal. 2014. DOI : 10.1002/chem.201403807.

Dye-sensitized solar cells with 13% efficiency achieved through the molecular engineering of porphyrin sensitizers

S. MathewA. YellaP. GaoR. Humphry-BakerB. F. E. Curchod  et al.

Nature Chemistry. 2014. DOI : 10.1038/nchem.1861.

Strong Photocurrent Amplification in Perovskite Solar Cells with a Porous TiO2 Blocking Layer under Reverse Bias

T. MoehlJ. H. ImY. H. LeeK. DomanskiF. Giordano  et al.

The Journal of Physical Chemistry Letters. 2014. DOI : 10.1021/jz502039k.

Controlled synthesis of TiO2 nanoparticles and nanospheres using a microwave assisted approach for their application in dye-sensitized solar cells

M. I. DarA. K. ChandiranM. GraetzelM. K. NazeeruddinS. A. Shivashankar

Journal of Materials Chemistry A. 2014. DOI : 10.1039/c3ta14130f.

Photoanode Based on (001)-Oriented Anatase Nanoplatelets for Organic-Inorganic Lead Iodide Perovskite Solar Cell

M. I. DarF. J. RamosZ. XueB. LiuS. Ahmad  et al.

Chemistry Of Materials. 2014. DOI : 10.1021/cm502185s.

Flexible high efficiency perovskite solar cells

C. Roldan-CarmonaO. MalinkiewiczA. SorianoG. Minguez EspallargasA. Garcia  et al.

Energy & Environmental Science. 2014. DOI : 10.1039/c3ee43619e.

Perovskite Solar Cells with 12.8% Efficiency by Using Conjugated Quinolizino Acridine Based Hole Transporting Material

P. QinS. PaekM. I. DarN. PelletJ. Ko  et al.

Journal Of The American Chemical Society. 2014. DOI : 10.1021/ja503272q.

Inorganic hole conductor-based lead halide perovskite solar cells with 12.4% conversion efficiency

P. QinS. TanakaS. ItoN. TetreaultK. Manabe  et al.

Nature Communications. 2014. DOI : 10.1038/ncomms4834.

Thiocyanate-Free Ruthenium(II) Sensitizers for Dye-Sensitized Solar Cells Based on the Cobalt Redox Couple

K.-L. WuJ. N. CliffordS.-W. WangY. AswaniE. Palomares  et al.

Chemsuschem. 2014. DOI : 10.1002/cssc.201402030.

Stable Quasi-Solid-State Dye-Sensitized Solar Cells Using Novel Low Molecular Mass Organogelators and Room-Temperature Molten Salts

L. TaoZ. HuoS. DaiY. DingJ. Zhu  et al.

Journal Of Physical Chemistry C. 2014. DOI : 10.1021/jp412717y.

Real-space observation of unbalanced charge distribution inside a perovskite-sensitized solar cell

V. W. BergmannS. A. L. WeberF. Javier RamosM. K. NazeeruddinM. Graetzel  et al.

Nature Communications. 2014. DOI : 10.1038/ncomms6001.

Effect of Annealing Temperature on Film Morphology of Organic-Inorganic Hybrid Pervoskite Solid-State Solar Cells

A. DualehN. TetreaultT. MoehlP. GaoM. K. Nazeeruddin  et al.

Advanced Functional Materials. 2014. DOI : 10.1002/adfm.201304022.

Sub-Nanometer Conformal TiO2 Blocking Layer for High Efficiency Solid-State Perovskite Absorber Solar Cells

A. K. ChandiranA. YellaM. T. MayerP. GaoM. K. Nazeeruddin  et al.

Advanced Materials. 2014. DOI : 10.1002/adma.201306271.

A hybrid lead iodide perovskite and lead sulfide QD heterojunction solar cell to obtain a panchromatic response

L. EtgarP. GaoP. QinM. GraetzelM. K. Nazeeruddin

Journal of Materials Chemistry A. 2014. DOI : 10.1039/c4ta02711f.

Adapting Ruthenium Sensitizers to Cobalt Electrolyte Systems

S. A. KumarM. UrbaniM. MedelM. InceD. Gonzalez-Rodriguez  et al.

The Journal of Physical Chemistry Letters. 2014. DOI : 10.1021/jz402612h.

Impedance Spectroscopic Analysis of Lead Iodide Perovskite-Sensitized Solid-State Solar Cells

A. DualehT. MoehlN. TetreaultJ. TeuscherP. Gao  et al.

Acs Nano. 2014. DOI : 10.1021/nn404323g.

Perovskite solar cells employing organic charge-transport layers

O. MalinkiewiczA. YellaY. H. LeeG. Minguez EspallargasM. Graetzel  et al.

Nature Photonics. 2014. DOI : 10.1038/Nphoton.2013.141.

Co(III) Complexes as p-Dopants in Solid-State Dye-Sensitized Solar Cells

J. BurschkaF. KesslerM. K. NazeeruddinM. Graetzel

Chemistry Of Materials. 2013. DOI : 10.1021/cm400796u.

Semiconductor electrode comprising a blocking layer

A. K. ChandiranM. K. NazeeruddinM. Graetzel

EP2788995 ; CN104106118 ; EP2788995 ; US2014332079 ; EP2788995 ; CN104106118 ; WO2013084029 . 2013.

How to blue-shift phosphorescence color of iridium(III) complexes

N. M. ShavaleevR. ScopellitiM. GraetzelM. K. Nazeeruddin

Inorganica Chimica Acta. 2013. DOI : 10.1016/j.ica.2012.12.004.

Low Current Density Driving Leads to Efficient, Bright, and Stable Green Electroluminescence

D. TorderaJ. FreyD. VonlanthenE. ConstableA. Pertegas  et al.

Advanced Energy Materials. 2013. DOI : 10.1002/aenm.201300284.

Blue-Coloured Highly Efficient Dye-Sensitized Solar Cells by Implementing the Diketopyrrolopyrrole Chromophore

J.-H. YumT. W. HolcombeY. KimK. RakstysT. Moehl  et al.

Scientific Reports. 2013. DOI : 10.1038/srep02446.

Evaluating the critical thickness of TiO2 layer on insulating mesoporous templates for efficient current collection in dye-sensitized solar cells

A. K. ChandiranP. ComteR. Humphry-BakerF. KesslerC. Yi  et al.

Advanced Functional Materials. 2013. DOI : 10.1002/adfm.201202956.

A deep-blue emitting charged bis-cyclometallated iridium(III) complex for light-emitting electrochemical cells

S. B. MeierW. SarfertJ. M. Junquera-HernandezM. DelgadoD. Tordera  et al.

Journal of Materials Chemistry C. 2013. DOI : 10.1039/c2tc00251e.

Sterically demanded unsymmetrical zinc phthalocyanines for dye-sensitized solar cells

L. GiribabuV. K. SinghT. JellaY. SoujanyaA. Amat  et al.

Dyes And Pigments. 2013. DOI : 10.1016/j.dyepig.2013.04.007.

The Molecular Engineering of Organic Sensitizers for Solar-Cell Applications

J. H. DelcampA. YellaT. W. HolcombeM. K. NazeeruddinM. Graetzel

Angewandte Chemie International Edition. 2013. DOI : 10.1002/anie.201205007.

Steric hindrance at metal centre quenches green phosphorescence of cationic iridium(III) complexes with 1-(2-pyridyl)-pyrazoles

N. M. ShavaleevR. ScopellitiM. GraetzelM. K. Nazeeruddin

Inorganica Chimica Acta. 2013. DOI : 10.1016/j.ica.2013.03.002.

Towards Compatibility between Ruthenium Sensitizers and Cobalt Electrolytes in Dye-Sensitized Solar Cells

L. E. PolanderA. YellaB. F. E. CurchodN. Ashari AstaniJ. Teuscher  et al.

Angewandte Chemie International Edition. 2013. DOI : 10.1002/anie.201304608.

Core/Shell PbSe/PbS QDs TiO2 Heterojunction Solar Cell

L. EtgarD. YanoverR. K. CapekR. VaxenburgZ. Xue  et al.

Advanced Functional Materials. 2013. DOI : 10.1002/adfm.201202322.

The Application of Electrospun Titania Nanofibers in Dye-sensitized Solar Cells

H. KrysovaA. ZukalJ. Trckova-BarakovaA. K. ChandiranM. K. Nazeeruddin  et al.

Chimia. 2013. DOI : 10.2533/chimia.2013.149.

Facile synthesis of a bulky BPTPA donor group suitable for cobalt electrolyte based dye sensitized solar cells

P. GaoY. J. KimJ.-H. YumT. W. HolcombeM. K. Nazeeruddin  et al.

Journal of Materials Chemistry A. 2013. DOI : 10.1039/c3ta10632b.

Electronic and structural modification of titanium dioxide/zinc oxide photoanode for dye-sensitized solar cells

A. K. Chandiran / M. GraetzelM. K. Nazeeruddin (Dir.)

Lausanne, EPFL, 2013. DOI : 10.5075/epfl-thesis-5999.

High-performance pure blue phosphorescent OLED using a novel bis-heteroleptic iridium(III) complex with fluorinated bipyridyl ligands

F. KesslerY. WatanabeH. SasabeH. KatagiriM. K. Nazeeruddin  et al.

Journal of Materials Chemistry C. 2013. DOI : 10.1039/c2tc00836j.

Metal free sensitizer and catalyst for dye sensitized solar cells

S. AhmadE. GuillenL. KavanM. GraetzelM. K. Nazeeruddin

Energy & Environmental Science. 2013. DOI : 10.1039/c3ee41888j.

First Principles Design of Dye Molecules with Ullazine Donor for Dye Sensitized Solar Cells

J. FengY. JiaoW. MaM. K. NazeeruddinM. Graetzel  et al.

Journal Of Physical Chemistry C. 2013. DOI : 10.1021/jp310504n.

A new terpyridine cobalt complex redox shuttle for dye-sensitized solar cells

P. SalvatoriG. MarottaA. CintiE. MosconiM. Panigrahi  et al.

Inorganica Chimica Acta. 2013. DOI : 10.1016/j.ica.2013.07.003.

Efficient Inorganic Organic Hybrid Perovskite Solar Cells Based on Pyrene Arylamine Derivatives as Hole-Transporting Materials

N. J. JeonJ. LeeJ. H. NohM. K. NazeeruddinM. Graetzel  et al.

Journal Of The American Chemical Society. 2013. DOI : 10.1021/ja410659k.

Enhancing the open circuit voltage of dye sensitized solar cells by surface engineering of silica particles in a gel electrolyte

L. EtgarG. SchuchardtD. CostenaroF. CarniatoC. Bisio  et al.

Journal of Materials Chemistry A. 2013. DOI : 10.1039/c3ta11436h.

Charged Bis-Cyclometalated Iridium(III) Complexes with Carbene-Based Ancillary Ligands

F. MontiF. KesslerM. DelgadoJ. FreyF. Bazzanini  et al.

Inorganic Chemistry. 2013. DOI : 10.1021/ic400600d.

Harnessing the open-circuit voltage via a new series of Ru(II) sensitizers bearing (iso-)quinolinyl pyrazolate ancillaries

K.-L. WuW.-P. KuJ. N. CliffordE. PalomaresS.-T. Ho  et al.

Energy & Environmental Science. 2013. DOI : 10.1039/c2ee23988d.

Using a two-step deposition technique to prepare perovskite (CH3NH3PbI3) for thin film solar cells based on ZrO2 and TiO2 mesostructures

D. BiS.-J. MoonL. HaggmanG. BoschlooL. Yang  et al.

RSC Advances. 2013. DOI : 10.1039/c3ra43228a.

The Role of p Bridges in High-Efficiency DSCs Based on Unsymmetrical Squaraines

J. H. DelcampY. ShiJ.-H. YumT. SajotoE. Dell'Orto  et al.

Chemistry-A European Journal. 2013. DOI : 10.1002/chem.201202677.

Regeneration and recombination kinetics in cobalt polypyridine based dye-sensitized solar cells, explained using Marcus theory

S. M. FeldtP. W. LohseF. KesslerM. K. NazeeruddinM. Graetzel  et al.

Physical Chemistry Chemical Physics. 2013. DOI : 10.1039/c3cp50997d.

High Open-Circuit Voltages: Evidence for a Sensitizer-Induced TiO2 Conduction Band Shift in Ru(II)-Dye Sensitized Solar Cells

T. MoehlH. N. TsaoK.-L. WuH.-C. HsuY. Chi  et al.

Chemistry Of Materials. 2013. DOI : 10.1021/cm401872q.

Towards high-performance DPP-based sensitizers for DSC applications

J.-H. YumT. W. HolcombeY. KimJ. YoonK. Rakstys  et al.

Chemical Communications (ChemComm). 2012. DOI : 10.1039/c2cc35597c.

High Efficiency Quantum Dot Heterojunction Solar Cell Using Anatase (001) TiO2 Nanosheets

L. EtgarW. ZhangS. GabrielS. G. HickeyM. K. Nazeeruddin  et al.

Advanced Materials. 2012. DOI : 10.1002/adma.201104497.

Fine-tuning the Electronic Structure of Organic Dyes for Dye-Sensitized Solar Cells

P. GaoH. N. TsaoM. GraetzelM. K. Nazeeruddin

Organic Letters. 2012. DOI : 10.1021/ol301730c.

Hole-conducting mediator for stable Sb2S3-sensitized photoelectrochemical solar cells

C.-S. LimS. H. ImJ. H. RheeY. H. LeeH.-J. Kim  et al.

Journal of Materials Chemistry. 2012. DOI : 10.1039/c1jm14584c.

Sub-nanometer Ga2O3 tunnelling layer by atomic layer deposition to achieve 1.1V open-circuit potential in dye-sensitized solar cells

A. K. ChandiranN. TétreaultR. Humphry-BakerF. KesslerE. Baranoff  et al.

Nano Letters. 2012. DOI : 10.1021/nl301023r.

Symmetric vs. asymmetric squaraines as photosensitisers in mesoscopic injection solar cells: a structure-property relationship study

J. ParkC. BaroloF. SauvageN. BarberoC. Benzi  et al.

Chemical Communications (ChemComm). 2012. DOI : 10.1039/c2cc17187b.

Modulating dye E(S+/S*) with efficient heterocyclic nitrogen containing acceptors for DSCs

J. H. DelcampA. YellaM. K. NazeeruddinM. Graetzel

Chemical Communications (ChemComm). 2012. DOI : 10.1039/c2cc17142b.

Colorants, pile solaire sensibilisée aux colorants et son procédé de fabrication

E. YonedaM. GraetzelM. Nazeeruddin

EP2036955 ; JP2009067976 ; EP2036955 . 2012.

Influence of the counter electrode on the photovoltaic performance of dye-sensitized solar cells using a disulfide/thiolate redox electrolyte

J. BurschkaV. BraultS. AhmadL. BreauM. K. Nazeeruddin  et al.

Energy & Environmental Science. 2012. DOI : 10.1039/c2ee03005e.

A new generation of platinum and iodine free efficient dye-sensitized solar cells

S. AhmadT. BesshoF. KesslerE. BaranoffJ. Frey  et al.

Physical Chemistry Chemical Physics. 2012. DOI : 10.1039/c2cp41611e.

Convergent Synthesis of Near-Infrared Absorbing, "Push-Pull", Bisthiophene-Substituted, Zinc(II) Phthalocyanines and their Application in Dye-Sensitized Solar Cells

M. InceF. CardinaliJ.-H. YumM. Victoria Martinez-DiazM. K. Nazeeruddin  et al.

Chemistry - A European Journal. 2012. DOI : 10.1002/chem.201200020.

Efficient orange light-emitting electrochemical cells

D. TorderaA. PertegasN. M. ShavaleevR. ScopellitiE. Orti  et al.

Journal of Materials Chemistry. 2012. DOI : 10.1039/c2jm33969b.

Nanocomposites containing neutral blue emitting cyclometalated iridium(III) emitters for oxygen sensing

M. Marín-SuárezB. F. E. CurchodI. TavernelliU. RothlisbergerR. Scopelliti  et al.

Chemistry of Materials. 2012. DOI : 10.1021/cm300575z.

Cobalt Electrolyte/Dye Interactions in Dye-Sensitized Solar Cells: A Combined Computational and Experimental Study

E. MosconiJ.-H. YumF. KesslerG. GarciaJ. Carlos  et al.

Journal Of The American Chemical Society. 2012. DOI : 10.1021/ja3079016.

Carboxyethynyl Anchoring Ligands: A Means to Improving the Efficiency of Phthalocyanine-Sensitized Solar Cells

M.-E. RagoussiJ.-J. CidJ.-H. YumG. de la TorreD. Di Censo  et al.

Angewandte Chemie International Edition. 2012. DOI : 10.1002/anie.201108963.

Phosphorescent cationic iridium(III) complexes with cyclometalating 1H-indazole and 2H-[1,2,3]-triazole ligands

N. M. ShavaleevR. ScopellitiM. GraetzelM. K. Nazeeruddin

Inorganica Chimica Acta. 2012. DOI : 10.1016/j.ica.2012.03.008.

Mesoscopic CH3NH3PbI3/TiO2 Heterojunction Solar Cells

L. EtgarP. GaoZ. XueP. QinA. K. Chandiran  et al.

Journal of the American Chemical Society. 2012. DOI : 10.1021/ja307789s.

A structural study of DPP-based sensitizers for DSC applications

T. W. HolcombeJ.-H. YumJ. YoonP. GaoM. Marszalek  et al.

Chemical Communications (ChemComm). 2012. DOI : 10.1039/c2cc35125k.

A cobalt complex redox shuttle for dye-sensitized solar cells with high open-circuit potentials

J.-H. YumE. BaranoffF. KesslerT. MoehlS. Ahmad  et al.

Nature Communications. 2012. DOI : 10.1038/ncomms1655.

Blue Phosphorescence of Trifluoromethyl- and Trifluoromethoxy-Substituted Cationic Iridium(III) Isocyanide Complexes

N. M. ShavaleevF. MontiR. ScopellitiN. ArmaroliM. Graetzel  et al.

Organometallics. 2012. DOI : 10.1021/om300557d.

Bistriphenylamine-based organic sensitizers with high molar extinction coefficients for dye-sensitized solar cells

D. W. ChangH. N. TsaoP. SalvatoriF. De AngelisM. Graetzel  et al.

RSC Advances. 2012. DOI : 10.1039/c2ra20798b.

A Simple Approach to Room Temperature Phosphorescent Allenylidene Complexes

F. KesslerB. F. E. CurchodI. TavernelliU. RothlisbergerR. Scopelliti  et al.

Angewandte Chemie International Edition. 2012. DOI : 10.1002/anie.201203329.

Metal complexes for use as dopants and other uses

J. BurschkaF. KesslerE. BaranoffM. NazeeruddinM. Graetzel

JP6568142 ; KR101957534 ; EP2678346 ; US10038150 ; EP2678346 ; US9779879 ; JP2017168450 ; CN103492402 ; JP6092787 ; CN103492401 ; US9559321 ; US2016233439 ; JP2014517807 ; JP2014513057 ; US2014060641 ; KR20140016298 ; KR20140015398 ; CN103492401 ; EP2678346 ; CN103492402 ; EP2678345 ; US2013330632 ; EP2551949 ; EP2511924 ; WO2012114316 ; WO2012114315 ; EP2492277 . 2012.

Anthocyanins and betalains as light-harvesting pigments for dye-sensitized solar cells

G. CalogeroJ.-H. YumA. SinopoliG. Di MarcoM. Graetzel  et al.

Solar Energy. 2012. DOI : 10.1016/j.solener.2012.02.018.

Influence of Halogen Atoms on a Homologous Series of Bis-Cyclometalated Iridium(III) Complexes

E. BaranoffB. F. E. CurchodF. MontiF. SteimerG. Accorsi  et al.

Inorganic Chemistry. 2012. DOI : 10.1021/ic2011474.

Near-UV to red-emitting charged bis-cyclometallated iridium(III) complexes for light-emitting electrochemical cells

F. KesslerR. D. CostaD. Di CensoR. ScopellitiE. Orti  et al.

Dalton Transactions. 2012. DOI : 10.1039/c1dt10698h.

Modeling Ruthenium-Dye-Sensitized TiO2 Surfaces Exposing the (001) or (101) Faces: A First-Principles Investigation

F. De AngelisG. VitillaroL. KavanM. K. NazeeruddinM. Graetzel

Journal Of Physical Chemistry C. 2012. DOI : 10.1021/jp306186y.

Self-assembled photosystem-I biophotovoltaics on nanostructured TiO2 and ZnO

A. MershinK. MatsumotoL. KaiserD. YuM. Vaughn  et al.

Scientific Reports. 2012. DOI : 10.1038/srep00234.

Near-infrared sensitization of solid-state dye-sensitized solar cells with a squaraine dye

A. DualehJ. H. DelcampM. K. NazeeruddinM. Graetzel

Applied Physics Letters. 2012. DOI : 10.1063/1.4707374.

Cyclometalated Ruthenium Dyes for DSSC

E. YonedaM. K. NazeeruddinM. Graetzel

Journal Of Photopolymer Science And Technology. 2012. DOI : 10.2494/photopolymer.25.175.

Acid-base properties of the N3 ruthenium(II) solar cell sensitizer: a combined experimental and computational analysis

G. PizzoliM. G. LobelloB. CarlottiF. EliseiM. K. Nazeeruddin  et al.

Dalton Transactions. 2012. DOI : 10.1039/c2dt31340e.

Acid-Induced Degradation of Phosphorescent Dopants for OLEDs and Its Application to the Synthesis of Tris-heteroleptic Iridium(III) Bis-cyclometalated Complexes

E. BaranoffB. F. E. CurchodJ. FreyR. ScopellitiF. Kessler  et al.

Inorganic Chemistry. 2012. DOI : 10.1021/ic202162q.

Bright Blue Phosphorescence from Cationic Bis-Cyclometalated Iridium(III) Isocyanide Complexes

N. M. ShavaleevF. MontiR. D. CostaR. ScopellitiH. J. Bolink  et al.

Inorganic Chemistry. 2012. DOI : 10.1021/ic202297h.

RETRACTED: Advances in colloidal quantum dot solar cells: The depleted-heterojunction device

I. J. KramerA. G. Pattantyus-AbrahamA. R. BarkhouseX. WangG. Konstantatos  et al.

Thin Solid Films. 2011. DOI : 10.1016/j.tsf.2010.12.121.

Coumarin dyes containing low-band-gap chromophores for dye-sensitised solar cells

K. D. SeoH. M. SongM. J. LeeM. PastoreC. Anselmi  et al.

Dyes And Pigments. 2011. DOI : 10.1016/j.dyepig.2011.01.009.

Design and Development of Novel Linker for PbS Quantum Dots/TiO2 Mesoscopic Solar cell

L. EtgarJ. ParkC. BaroloM. K. NazeeruddinG. Viscardi  et al.

ACS Applied Materials & Interfaces. 2011. DOI : 10.1021/am200811c.

Effect of anchoring groups in zinc phthalocyanine on the dye-sensitized solar cell performance and stability

M. Garcia-IglesiasJ.-H. YumR. Humphry-BakerS. M. ZakeeruddinP. Pechy  et al.

Chemical Science. 2011. DOI : 10.1039/c0sc00602e.

Incorporating Multiple Energy Relay Dyes in Liquid Dye-Sensitized Solar Cells

J.-H. YumB. E. HardinE. T. HokeE. BaranoffS. M. Zakeeruddin  et al.

ChemPhysChem. 2011. DOI : 10.1002/cphc.201000854.

Graphene Nanoplatelet Cathode for Co(III)/(II) Mediated Dye-Sensitized Solar Cells

L. KavanJ.-H. YumM. K. NazeeruddinM. Graetzel

ACS Nano. 2011. DOI : 10.1021/nn203416d.

Optimization of distyryl-Bodipy chromophores for efficient panchromatic sensitization in dye sensitized solar cells

S. KolemenO. A. BozdemirY. CakmakG. BarinS. Erten-Ela  et al.

Chemical Science. 2011. DOI : 10.1039/c0sc00649a.

Novel ligands for sensitizing dyes of dye-sensitized solar cells

M. NazeeruddinM. GraetzelA. AbbottoC. MarinziN. Manfredi  et al.

EP2483265 ; EP2483265 ; US9359334 ; US2012253043 ; EP2483265 ; WO2011039715 ; EP2301932 . 2011.

A bright tetranuclear iridium(III) complex

E. BaranoffE. OrselliL. AlloucheD. Di CensoR. Scopelliti  et al.

Chemical Communications (ChemComm). 2011. DOI : 10.1039/c0cc05029f.

Room-temperature combinatorial screening of cyclometallated iridium(III) complexes for a step towards molecular control of colour purity

E. BaranoffI. JungR. ScopellitiE. SolariM. Graetzel  et al.

Dalton Transactions. 2011. DOI : 10.1039/c0dt01697g.

A High-Efficiency Panchromatic Squaraine Sensitizer for Dye-Sensitized Solar Cells

Y. ShiR. B. M. HillJ.-H. YumA. DualehS. Barlow  et al.

Angewandte Chemie International Edition. 2011. DOI : 10.1002/anie.201101362.

Convenient synthesis of tridentate 2,6-di(pyrazol-1-yl)-4-carboxypyridine and tetradentate 6,6 '-di(pyrazol-1-yl)-4,4 '-dicarboxy-2,2 '-bipyridine ligands

C. KleinE. BaranoffM. GraetzelM. K. Nazeeruddin

Tetrahedron Letters. 2011. DOI : 10.1016/j.tetlet.2010.12.001.

Stable dye-sensitized solar cells based on organic chromophores and ionic liquid electrolyte

D. KuangP. ComteS. M. ZakeeruddinD. P. HagbergK. M. Karlsson  et al.

Solar Energy. 2011. DOI : 10.1016/j.solener.2011.02.025.

Atomic Layer Deposition for Novel Dye-Sensitized Solar Cells

N. TetreaultL.-P. HeinigerM. StefikP. P. LabouchereE. Arsenault  et al.

2011. 7th Symposium on Atomic Layer Deposition Applications/220th Meeting of the Electrochemical-Society (ECS), Boston, MA, Oct 10-12, 2011. p. 303 - 314. DOI : 10.1149/1.3633681.

Panchromatic engineering for dye-sensitized solar cells

J.-H. YumE. BaranoffS. WengerM. K. NazeeruddinM. Graetzel

Energy & Environmental Science. 2011. DOI : 10.1039/c0ee00536c.

Polypyridyl Ru(II)-sensitizers with extended pi-system enhances the performance of dye sensitized solar cells

M. ChandrasekharamG. RajkumarC. S. RaoT. SureshM. A. Reddy  et al.

Synthetic Metals. 2011. DOI : 10.1016/j.synthmet.2011.03.022.

Bis-Donor-Bis-Acceptor Tribranched Organic Sensitizers for Dye-Sensitized Solar Cells

A. AbbottoV. LeandriN. ManfrediF. De AngelisM. Pastore  et al.

European Journal of Organic Chemistry. 2011. DOI : 10.1002/ejoc.201100821.

Tris(2-(1H-pyrazol-1-yl)pyridine)cobalt(III) as p-Type Dopant for Organic Semiconductors and Its Application in Highly Efficient Solid-State Dye-Sensitized Solar Cells

J. BurschkaA. DualehF. KesslerE. BaranoffN.-L. Cevey-Ha  et al.

Journal of the American Chemical Society. 2011. DOI : 10.1021/ja207367t.

Organic dyes incorporating low-band-gap chromophores based on pi-extended benzothiadiazole for dye-sensitized solar cells

D. H. LeeM. J. LeeH. M. SongB. J. SongK. D. Seo  et al.

Dyes And Pigments. 2011. DOI : 10.1016/j.dyepig.2011.03.015.

A new familiy of heteroleptic ruthenium(II) polypyridyl complexes for sensitization of nanocrystalline TiO2 films

L. GiribabuT. BesshoM. SrinivasuC. VijaykumarY. Soujanya  et al.

Dalton Transactions. 2011. DOI : 10.1039/c0dt01417f.

Increasing the efficiency of zinc-phthalocyanine based solar cells through modification of the anchoring ligand

M. Garcia-IglesiasJ.-J. CidJ.-H. YumA. ForneliP. Vazquez  et al.

Energy & Environmental Science. 2011. DOI : 10.1039/c0ee00368a.

Influence of the interfacial charge-transfer resistance at the counter electrode in dye-sensitized solar cells employing cobalt redox shuttles

H. N. TsaoJ. BurschkaC. YiF. KesslerM. K. Nazeeruddin  et al.

Energy & Environmental Science. 2011. DOI : 10.1039/c1ee02389f.

Toward Interaction of Sensitizer and Functional Moieties in Hole-Transporting Materials for Efficient Semiconductor-Sensitized Solar Cells

S. H. ImC.-S. LimJ. A. ChangY. H. LeeN. Maiti  et al.

Nano Letters. 2011. DOI : 10.1021/nl2026184.

Influence of Lithium Ions on the Ion-coordinating Ruthenium Sensitizers for Nanocrystalline Dye-sensitized Solar Cells

N. ChoC.-W. LeeD. W. ChoS. O. KangJ. Ko  et al.

Bulletin Of The Korean Chemical Society. 2011. DOI : 10.5012/bkcs.2011.32.8.3031.

Spectroelectrochemical studies of hole percolation on functionalised nanocrystalline TiO2 films: a comparison of two different ruthenium complexes

X. LiM. K. NazeeruddinM. ThelakkatP. R. F. BarnesR. Vilar  et al.

Physical Chemistry Chemical Physics. 2011. DOI : 10.1039/c0cp01013h.

Dye, dye-sensitized solar cell, and method for manufacturing the same

E. YonedaM. GraetzelM. K. Nazeeruddin

JP5281863 ; JP2010084003 . 2010.

Unsymmetrical squaraine dimer with an extended pi-electron framework: An approach in harvesting near infra-red photons for energy conversion

S. KusterF. SauvageM. K. NazeeruddinM. GraetzelF. A. Nueesch  et al.

Dyes And Pigments. 2010. DOI : 10.1016/j.dyepig.2010.01.019.

First-Principles Modeling of the Adsorption Geometry and Electronic Structure of Ru(II) Dyes on Extended TiO2 Substrates for Dye-Sensitized Solar Cell Applications

F. De AngelisS. FantacciA. SelloniM. K. NazeeruddinM. Graetzel

Journal Of Physical Chemistry C. 2010. DOI : 10.1021/jp911663k.

Molecular engineering of panchromatic unsymmetrical squaraines for dye-sensitized solar cell applications

H. ChoiJ.-J. KimK. SongJ. KoM. K. Nazeeruddin  et al.

Journal of Materials Chemistry. 2010. DOI : 10.1039/b926863d.

Photoelectric conversion devices comprising novel ligands and sensitizers

M. NazeeruddinM. Graetzel

EP2353195 ; EP2353195 ; KR101747443 ; JP5722792 ; US8962977 ; JP2012508450 ; JP2012508227 ; US2011303267 ; US2011265876 ; KR20110095306 ; KR20110095307 ; EP2353195 ; EP2351116 ; WO2010055470 ; WO2010055471 . 2010.

An inconvenient influence of iridium(III) isomer on OLED efficiency

E. BaranoffH. J. BolinkF. De AngelisS. FantacciD. Di Censo  et al.

Dalton Transactions. 2010. DOI : 10.1039/c0dt00414f.

High Molar Extinction Coefficient Organic Sensitizers for Efficient Dye-Sensitized Solar Cells

H. ChoiI. RaabeD. KimF. TeocoliC. Kim  et al.

Chemistry - A European Journal. 2010. DOI : 10.1002/chem.200902197.

Molecular Engineering of Efficient Organic Sensitizers Incorporating a Binary pi-Conjugated Linker Unit for Dye-Sensitized Solar Cells

S. PaekH. ChoiH. ChoiC.-W. LeeM.-s. Kang  et al.

Journal Of Physical Chemistry C. 2010. DOI : 10.1021/jp104310r.

Effect of heat and light on the performance of dye-sensitized solar cells based on organic sensitizers and nanostructured TiO2

J.-H. YumR. Humphry-BakerS. M. ZakeeruddinM. K. NazeeruddinM. Graetzel

Nano Today. 2010. DOI : 10.1016/j.nantod.2010.02.003.

Efficient Platinum-Free Counter Electrodes for Dye-Sensitized Solar Cell Applications

S. AhmadJ.-H. YumH.-J. ButtM. K. NazeeruddinM. Graetzel

ChemPhysChem. 2010. DOI : 10.1002/cphc.201000612.

Convenient synthesis of functionalized 4,4 '-disubstituted-2,2 '-bipyridine with extended pi-system for dye-sensitized solar cell applications

C. KleinE. BaranoffM. K. NazeeruddinM. Graetzel

Tetrahedron Letters. 2010. DOI : 10.1016/j.tetlet.2010.09.077.

Theoretical Screening of -NH2-, -OH-, -CH3-, -F-, and -SH-Substituted Porphyrins As Sensitizer Candidates for Dye-Sensitized Solar Cells

R. MaP. GuoL. YangL. GuoX. Zhang  et al.

The Journal of Physical Chemistry A. 2010. DOI : 10.1021/jp909787t.

Solid-state dye-sensitized solar cells using polymerized ionic liquid electrolyte with platinum-free counter electrode

R. KawanoT. KatakabeH. ShimosawaM. K. NazeeruddinM. Graetzel  et al.

Physical Chemistry Chemical Physics. 2010. DOI : 10.1039/b920633g.

Novel anchoring ligands for sensitizers of dye-sensitized photovoltaic devices

S. ZakeeruddinC. KleinM. NazeeruddinM. GraetzelA. Mishra  et al.

EP2353195 ; EP2353195 ; KR101747443 ; JP5722792 ; US8962977 ; JP2012508450 ; JP2012508227 ; US2011303267 ; US2011265876 ; KR20110095306 ; KR20110095307 ; EP2353195 ; EP2351116 ; WO2010055470 ; WO2010055471 . 2010.

Depleted-Heterojunction Colloidal Quantum Dot Solar Cells

A. G. Pattantyus-AbrahamI. J. KramerA. R. BarkhouseX. WangG. Konstantatos  et al.

ACS Nano. 2010. DOI : 10.1021/nn100335g.

Novel luminescent Ir(III) dyes for developing highly sensitive oxygen sensing films

M. M.-S. ToroJ. F. Fernandez-SanchezE. BaranoffM. K. NazeeruddinM. Graetzel  et al.

Talanta. 2010. DOI : 10.1016/j.talanta.2010.05.018.

Cyclometallated Iridium Complexes as Sensitizers for Dye-Sensitized Solar Cells

E. BaranoffJ.-H. YumI. JungR. VulcanoM. Graetzel  et al.

Chemistry-An Asian Journal. 2010. DOI : 10.1002/asia.200900429.

Phosphorescent energy relay dye for improved light harvesting response in liquid dye-sensitized solar cells

J.-H. YumE. BaranoffB. E. HardinE. T. HokeM. D. McGehee  et al.

Energy & Environmental Science. 2010. DOI : 10.1039/b925473k.

CdSe quantum dot (QD) and molecular dye hybrid sensitizers for TiO2 mesoporous solar cells: working together with a common hole carrier of cobalt complexes

H. J. LeeD. W. ChangS.-M. ParkS. M. ZakeeruddinM. Graetzel  et al.

Chemical Communications (ChemComm). 2010. DOI : 10.1039/c0cc03808c.

Dual-Emitting Langmuir-Blodgett Film-Based Organic Light-Emitting Diodes

H. J. BolinkE. BaranoffM. Clemente-LeonE. CoronadoN. Lardies  et al.

Langmuir. 2010. DOI : 10.1021/la100956w.

Dye-sensitized solar cells based on poly (3,4-ethylenedioxythiophene) counter electrode derived from ionic liquids

S. AhmadJ.-H. YumX. ZhangM. GraetzelH.-J. Butt  et al.

Journal of Materials Chemistry. 2010. DOI : 10.1039/b920210b.

Facile preparation of large aspect ratio ellipsoidal anatase TiO2 nanoparticles and their application to dye-sensitized solar cell

I. C. BaekM. VithalJ. A. ChangJ.-H. YumM. K. Nazeeruddin  et al.

Electrochemistry Communications. 2009. DOI : 10.1016/j.elecom.2009.02.026.

An Efficient Dye-Sensitized Solar Cell with an Organic Sensitizer Encapsulated in a Cyclodextrin Cavity

H. ChoiS. O. KangJ. KoG. GaoH. S. Kang  et al.

Angewandte Chemie International Edition. 2009. DOI : 10.1002/anie.200902013.

Organic dyes with a novel anchoring group for dye-sensitized solar cell applications

C. BaikD. KimM.-S. KangS. O. KangJ. Ko  et al.

Journal Of Photochemistry And Photobiology A-Chemistry. 2009. DOI : 10.1016/j.jphotochem.2008.10.018.

High efficient donor-acceptor ruthenium complex for dye-sensitized solar cell applications

J.-H. YumI. JungC. BaikJ. KoM. K. Nazeeruddin  et al.

Energy & Environmental Science. 2009. DOI : 10.1039/b814863p.

A Dendritic Oligothiophene Ruthenium Sensitizer for Stable Dye-Sensitized Solar Cells

F. SauvageM. FischerA. MishraS. ZakeeruddinM. Nazeeruddin  et al.

ChemSusChem. 2009. DOI : 10.1002/cssc.200900058.

Efficient CdSe Quantum Dot-Sensitized Solar Cells Prepared by an Improved Successive Ionic Layer Adsorption and Reaction Process

H. LeeM. WangP. ChenD. GamelinS. Zakeeruddin  et al.

Nanoletters. 2009. DOI : 10.1021/nl902438d.

Molecular Ionic Junction for Enhanced Electronic Charge Transfer

H. J. BolinkE. BaranoffM. Clemente-LeonE. CoronadoA. Lopez-Munoz  et al.

Langmuir. 2009. DOI : 10.1021/la803199s.

Increased light harvesting in dye-sensitized solar cells with energy relay dyes

B. E. HardinE. T. HokeP. B. ArmstrongJ.-H. YumP. Comte  et al.

Nature Photonics. 2009. DOI : 10.1038/NPHOTON.2009.96.

High Molar Extinction Coefficient Ruthenium Sensitizers for Thin Film Dye-Sensitized Solar Cells

S.-R. JangJ.-H. YumC. KleinK.-J. KimP. Wagner  et al.

Journal of Physical Chemistry C. 2009. DOI : 10.1021/jp8077562.

Functionalized alkyne bridged dendron based chromophores for dye-sensitized solar cell applications

N. S. BaekJ.-H. YumX. ZhangH. K. KimM. K. Nazeeruddin  et al.

Energy & Environmental Science. 2009. DOI : 10.1039/b908670f.

Substituent Effect on the Meso-Substituted Porphyrins: Theoretical Screening of Sensitizer Candidates for Dye-Sensitized Solar Cells

R. MaP. GuoH. CuiX. ZhangM. K. Nazeeruddin  et al.

The Journal of Physical Chemistry A. 2009. DOI : 10.1021/jp905412y.

Panchromatic Response in Solid-State Dye-Sensitized Solar Cells Containing Phosphorescent Energy Relay Dyes

-H. YumB. HardinS.-J. MoonE. BaranoffF. Nueesch  et al.

Angewandte Chemie International Edition. 2009. DOI : 10.1002/anie.200904725.

Molecular Design of Unsymmetrical Squaraine Dyes for High Efficiency Conversion of Low Energy Photons into Electrons Using TiO2 Nanocrystalline Films

T. GeigerS. KusterJ.-H. YumS.-J. MoonM. K. Nazeeruddin  et al.

Advanced Functional Materials. 2009. DOI : 10.1002/adfm.200900231.

Di-branched di-anchoring organic dyes for dye-sensitized solar cells

A. AbbottoN. ManfrediC. MarinziF. De AngelisE. Mosconi  et al.

Energy & Environmental Science. 2009. DOI : 10.1039/b910654e.

Highly Efficient Organic Sensitizers for Solid-State Dye-Sensitized Solar Cells

S.-J. MoonJ.-H. YumR. Humphry-BakerK. M. KarlssonD. P. Hagberg  et al.

Journal of Physical Chemistry C. 2009. DOI : 10.1021/jp9033722.

Panchromatic Cross-Substituted Squaraines for Dye-Sensitized Solar Cell Applications

L. BeverinaR. RuffoC. M. MariG. A. PaganiM. Sassi  et al.

ChemSusChem. 2009. DOI : 10.1002/cssc.200900077.

Regenerative PbS and CdS Quantum Dot Sensitized Solar Cells with a Cobalt Complex as Hole Mediator

H. J. LeeP. ChenS.-J. MoonF. SauvageK. Sivula  et al.

Langmuir. 2009. DOI : 10.1021/la900247r.

High Open-Circuit Voltage Solid-State Dye-Sensitized Solar Cells with Organic Dye

P. ChenJ. H. YumF. De AngelisE. MosconiS. Fantacci  et al.

Nano Letters. 2009. DOI : 10.1021/nl901246g.

Carboxy-1,4-phenylenevinylene- and carboxy-2,6-naphthylene-vinylene unsymmetrical substituted zinc phthalocyanines for dye-sensitized solar cells

F. SilvestriM. Garcia-IglesiasJ.-H. YumP. VazquezaM. V. Martinez-Diaza  et al.

Journal Of Porphyrins And Phthalocyanines. 2009. DOI : 10.1142/S1088424609000449.

Influence of Sodium Cations of N3 Dye on the Photovoltaic Performance and Stability of Dye-Sensitized Solar Cells

L. AndradeS. ZakeeruddinM. NazeeruddinH. RibeiroA. Mendes  et al.

ChemPhysChem. 2009. DOI : 10.1002/cphc.200900111.

Unsymmetrical extended pi-conjugated zinc phthalocyanine for sensitization of nanocrystalline TiO2 films

L. GiribabuC. V. KumarP. Y. ReddyJ.-H. YumM. Graetzel  et al.

Journal Of Chemical Sciences. 2009. DOI : 10.1007/s12039-009-0008-9.

Study of Dye-Sensitized Solar Cells by Scanning Electron Micrograph Observation and Thickness Optimization of Porous TiO2 Electrodes

S. ItoM. NazeeruddinS. ZakeeruddinP. PechyP. Comte  et al.

International Journal of Photoenergy. 2009. DOI : 10.1155/2009/517609.

Time-dependent density functional theory study of squaraine dye-sensitized solar cells

D. RoccaR. GebauerF. De AngelisM. K. NazeeruddinS. Baroni

Chemical Physics Letters. 2009. DOI : 10.1016/j.cplett.2009.05.019.

Molecular Engineering of Organic Sensitizers for Dye-Sensitized Solar Cell Applications

D. P. HagbergJ.-H. YumH. LeeF. De AngelisT. Marinado  et al.

Journal of the American Chemical Society. 2008. DOI : 10.1021/ja800066y.

Fabrication of thin film dye sensitized solar cells with solar to electric power conversion efficiency over 10%

S. ItoT. N. MurakamiP. ComteP. LiskaC. Graetzel  et al.

2008. 6th International Conference on Coatings on Glass and Plasics, Dresden, GERMANY, Jun 18-22, 2006. p. 4613 - 4619. DOI : 10.1016/j.tsf.2007.05.090.

Electron-rich heteroaromatic conjugated bipyridine based ruthenium sensitizer for efficient dye-sensitized solar cells

A. AbbottoC. BaroloL. BellottoF. De AngelisM. Graetzel  et al.

Chemical Communications (ChemComm). 2008. DOI : 10.1039/b811378e.

Ab Initio Prediction of the Emission Color in Phosphorescent Iridium(III) Complexes for OLEDs

F. De AngelisF. SantoroM. K. NazeruddinV. Barone

The Journal of Physical Chemistry B. 2008. DOI : 10.1021/jp806519d.

Tri-tert-butylcarboxyphthalocyanines, uses thereof and a process for their preparation

C. TorresM. CidN. KhajaY. HoM. Graetzel  et al.

WO2008145172 . 2008.

Effect of Coadsorbent on the Photovoltaic Performance of Zinc Pthalocyanine-Sensitized Solar Cells

J.-H. YumS.-r. JangR. Humphry-BakerM. GraetzelJ.-J. Cid  et al.

Langmuir. 2008. DOI : 10.1021/la800087q.

Synthesis, Characterization, and DFT/TD-DFT Calculations of Highly Phosphorescent Blue Light-Emitting Anionic Iridium Complexes

D. Di CensoS. FantacciF. De AngelisC. KleinN. Evans  et al.

Inorganic Chemistry. 2008. DOI : 10.1021/ic701814h.

A mass spectrometric analysis of sensitizer solution used for dye-sensitized solar cell

R. BuscainoC. BaiocchiC. BaroloC. MedanaM. Graetzel  et al.

Inorganica Chimica Acta. 2008. DOI : 10.1016/j.ica.2007.07.016.

Sublimation Not an Innocent Technique: A Case of Bis-Cyclometalated Iridium Emitter for OLED

E. BaranoffS. SuàrezP. BugnonC. BaroloR. Buscaino  et al.

Inorganic Chemistry. 2008. DOI : 10.1021/ic800747t.

An element of surprise - efficient copper-functionalized dye-sensitized solar cells

T. BesshoE. C. ConstableM. GraetzelA. H. RedondoC. E. Housecroft  et al.

Chemical Communications (ChemComm). 2008. DOI : 10.1039/b808491b.

An Improved Perylene Sensitizer for Solar Cell Applications

C. LiJ.-Y. YumS.-J. MoonA. HerrmannF. Eickemeyer  et al.

ChemSusChem. 2008. DOI : 10.1002/cssc.200800068.

Recent Developments in Solid-State Dye-Sensitized Solar Cells

J.-Y. YumP. ChenM. GraetzelM. Nazeeruddin

ChemSusChem. 2008. DOI : 10.1002/cssc.200800084.

CdSe quantum dot-sensitized solar cells exceeding efficiency 1% at full-sun intensity

H. J. LeeJ.-H. YumH. C. LeventisS. M. ZakeeruddinS. A. Haque  et al.

Journal of Physical Chemistry C. 2008. DOI : 10.1021/jp802572b.

High Extinction Coefficient "Antenna" Dye in Solid-State Dye-Sensitized Solar Cells: A Photophysical and Electronic Study

H. J. SnaithC. S. KarthikeyanA. PetrozzaJ. TeuscherJ. E. Moser  et al.

Journal of Physical Chemistry C. 2008. DOI : 10.1021/jp801714u.

Amphiphilic ruthenium dye as an ideal sensitizer in conversion of light to electricity using ionic liquid crystal electrolyte

M. KawanoM. NazeeruddinA. SatoM. GraetzelM. Watanabe

Electrochemistry Communications. 2007. DOI : 10.1016/j.elecom.2007.01.005.

Electro luminescent metal complexes

M. K. NazeeruddinR. T. WeghS. KlinkM. GraetzelC. Klein

JP5475282 ; TWI409317 ; KR101300029 ; CN101238138 ; US8039124 ; US2010044637 ; DE602006008475 ; AT439366 ; EP1904508 ; EP2036913 ; EP2036913 ; EP2036914 ; EP2036915 ; JP2009500316 ; CN101238138 ; KR20080030636 ; EP1904508 ; WO2007004113 ; TW200708592 ; WO2007004113 . 2007.

Co-sensitization of Organic Dyes for Efficient Ionic Liquid Electrolyte-based Dye-Sensitized Solar Cell

D. KuangP. WalterF. NueschS. KimJ. Ko  et al.

Langmuir. 2007. DOI : 10.1021/la702411n.

Controlling Phosphorescence Color and Quantum Yields in Cationic Iridium Complexes: A Combined Experimental and Theoretical Study

F. De AngelisS. FantacciN. EvansC. KleinS. M. Zakeeruddin  et al.

Inorganic Chemistry. 2007. DOI : 10.1021/ic700435c.

Efficient Sensitization of Nanocrystalline TiO2 Films by a Near Infrared Absorbing Unsymmetrical Zinc Phthalocyanine

Y. ReddyL. GiribabuC. LynessH. SnaithC. Vijaykumar  et al.

Angewandte Chemie International Edition. 2007. DOI : 10.1002/anie.200603098.

Transition metal complexes for photovoltaic and light emitting applications

M. K. NazeeruddinM. Graetzel

Structure and Bonding (Berlin, Germany). 2007. DOI : 10.1007/430_2007_056.

Highly Efficient Porphyrin Sensitizers for Dye-Sensitized Solar Cells

W. M. CampbellK. W. JolleyP. WagnerK. WagnerP. J. Walsh  et al.

Journal of Physical Chemistry C. 2007. DOI : 10.1021/jp0750598.

Sensor technologies based on a cellulose supported platform

J. H. PoplinR. P. SwatloskiJ. D. HolbreyS. K. SpearA. Metlen  et al.

Chemical Communications (ChemComm). 2007. DOI : 10.1039/B704651K.

Molecular cosensitization for efficient panchromatic dye-sensitized solar cells

J.-J. CidJ.-H. YumS.-R. JangM. K. NazeeruddinE. Martinez-Ferrero  et al.

Angewandte Chemie International Edition. 2007. DOI : 10.1002/anie.200703106.

Origin of the large spectral shift in electroluminescence in a blue light emitting cationic iridium(III) complex

H. J. BolinkL. CappelliS. CheylanE. CoronadoR. D. Costa  et al.

Journal of Materials Chemistry. 2007. DOI : 10.1039/b713745a.

Light-emitting material.

S. H. JinO.-S. JungY. I. KimM. H. HyunJ. W. Lee  et al.

US2009200920 ; JP2009511655 ; CN101287810 ; KR20080066672 ; EP1934302 ; WO2007042474 ; TW200722500 ; WO2007042474 ; CA2624927 ; EP1772507 . 2007.

A High Molar Extinction Coefficient Charge Transfer Sensitizer and its Application in Dye Sensitized Solar Cell

M. K. NazeeruddinT. BesshoL. CeveyS. ItoC. Klein  et al.

Journal of Photochemistry and Photobiology A: Chemistry. 2007. DOI : 10.1016/j.jphotochem.2006.06.028.

Engineering of Efficient Phosphorescent Iridium complex for developing oxygen sensitive polymeric and nanostructured film

A. Medina-CastilloJ. Fernandez-SanchezC. KleinM. K. NazeeruddinA. Sequira-Carretero  et al.

Analyst. 2007. DOI : 10.1039/b702628e.

Dye Dependent Regeneration Dynamics in Dye Sensitized Nanocrystalline Solar Cells: Evidence for the Formation of a Ruthenium Bipyridyl Cation/Iodide Intermediate

J. N. CliffordE. PalomaresM. K. NazeeruddinM. GraetzelJ. R. Durrant

Journal of Physical Chemistry C. 2007. DOI : 10.1021/jp067458t.

Fabrication of screen-printing pastes from TiO2 powders for dye-sensitised solar cells

S. ItoP. ChenP. ComteM. K. NazeeruddinP. Liska  et al.

Prog. Photovoltaics. 2007. DOI : 10.1002/pip.768.

The Electronic Role of the TiO2 Light-Scattering Layer in Dye-Sensitized Solar Cells

Z. ZhangS. ItoB. O'ReganD. KuangS. Zakeeruddin  et al.

Zeitschrift für Physikalische Chemie. 2007. DOI : 10.1524/zpch.2007.221.3.319.

Novel Oxygen Selective Complexes for Optical Oxygen Sensing

J. F. Fernández-SánchezT. RothR. CannasM. K. NazeeruddinS. Spichiger  et al.

Talanta. 2007. DOI : 10.1016/j.talanta.2006.03.043.

Highly Efficient dye-sensitized solar cells based on carbon black counter electrodes

T. N. MurakamiA. KayS. ItoQ. WangM. K. Nazeeruddin  et al.

Journal of the Electrochemical Society. 2006. DOI : 10.1149/1.2358087.

Molecular Engineering of Organic Sensitizers for Solar Cell Applications

S. KimJ. LeeS. KangJ. KoJ.-H. Yum  et al.

Journal of the American Chemical Society. 2006. DOI : 10.1021/ja066376f.

Molecular engineering of iridium complexes and their application in organic light emitting devices

M. K. NazeeruddinC. KleinM. GratzelL. ZuppiroliD. Berner

Highly Efficient OLEDs with Phosphorescent Materials; Weinheim: Wiley-VCH, 2006. p. 363 - 390.

Synthesis, Characterization, and DFT-TDDFT Computational Study of a Ruthenium Complex Containing a Functionalized Tetradentate Ligand

C. BaroloM. K. NazeeruddinS. FantacciD. Di CensoP. Comte  et al.

Inorganic Chemistry. 2006. DOI : 10.1021/ic051970w.

Alkyl Chain Barriers for Kinetic Optimization in Dye-Sensitized Solar Cells

J. KroezeN. HirataS. KoopsM. NazeeruddinL. Schmidt-Mende  et al.

Journal of the American Chemical Society. 2006. DOI : 10.1021/ja065653f.

Encapsulation-free hybrid organic-inorganic light-emitting diodes

K. MoriiM. IshidaT. TakashimaT. ShimodaQ. Wang  et al.

Applied Physics Letters. 2006. DOI : 10.1063/1.2374812.

High-efficiency (7.2%) flexible dye-sensitized solar cells with Ti-metal substrate for nanocrystalline-TiO2 photoanode

S. ItoN.-L. Cevey HaG. RothenbergerP. LiskaP. Comte  et al.

Chemical Communications (ChemComm). 2006. DOI : 10.1039/b608279c.

DFT-INDO/S modeling of new high molar extinction coefficient charge-transfer sensitizers for solar cell applications

K. Nazeeruddin MohammadQ. WangL. CeveyV. AranyosP. Liska  et al.

Inorganic chemistry. 2006. DOI : 10.1021/ic051727x.

Efficient Green-Blue-Light-Emitting Cationic Iridium Complex for Light-Emitting Electrochemical Cells

M. K. NazeeruddinR. WeghZ. ZhouC. KleinQ. Wang  et al.

Inorganic Chemistry. 2006. DOI : 10.1021/ic060495e.

Molecular Wiring of Nanocrystals: NCS-Enhanced Cross-Surface Charge Transfer in Self-Assembled Ru-Complex Monolayer on Mesoscopic Oxide Films

Q. WangS. M. ZakeeruddinM. K. NazeeruddinR. Humphry-BakerM. Graetzel

Journal of the American Chemical Society. 2006. DOI : 10.1021/ja058616h.

Stable Single-Layer Light-Emitting Electrochemical Cell Using 4,7-Diphenyl-10-phenanthroline-bis(2-phenylpyridine)iridium(III) Hexafluorophosphate

H. BolinkL. CappelliE. CoronadoM. GraetzelE. Ortí  et al.

Journal of the American Chemical Society. 2006. DOI : 10.1021/ja066416f.

Electronic Structures and Absorption Spectra of Linkage Isomers of Trithiocyanato (4,4‘,4“-Tricarboxy-2,2‘:6,2“-terpyridine) Ruthenium(II) Complexes: A DFT Study

S. GhoshG. ChaitanyaK. BhanuprakashM. K. NazeeruddinM. Graetzel  et al.

Inorg. Chem. 2006. DOI : 10.1021/ic051851g.

High-Efficiency Organic-Dye-Sensitized Solar Cells Controlled by Nanocrystalline-TiO2 Electrode Thickness

S. ItoS. M. ZakeeruddinR. Humphry-BakerP. LiskaP. Charvet  et al.

Advanced Materials. 2006. DOI : 10.1002/adma.200502540.

Efficient and Stable Solid-State Light-Emitting Electrochemical Cell Using Tris(4,7-diphenyl-1,10-phenanthroline)ruthenium(II) Hexafluorophosphate

H. J. BolinkL. CappelliE. CoronadoM. GraetzelM. K. Nazeeruddin

Journal of the American Chemical Society. 2006. DOI : 10.1021/ja0565065.

Photovoltaic Characterization of Dye-sensitized Solar Cells: Effect of Device Masking on Conversion Efficiency

S. ItoM. NazeeruddinP. LiskaP. ComteR. Charvet  et al.

Progress in Photovoltaics: Research and Applications. 2006. DOI : 10.1002/pip.683.

Hybrid Polymer/ZnO Photovoltaic Devices with Vertically Oriented ZnO Nanorods and an Amphiphilic Molecular Interface Layer

P. RavirajanA. M. PeiroM. K. NazeeruddinM. GraetzelD. D. Bradley  et al.

The Journal of Physical Chemistry B. 2006. DOI : 10.1021/jp0571372.

Highly selective and reversible optical, colorimetric, and electrochemical detection of mercury(II) by amphiphilic ruthenium complexes anchored onto mesoporous oxide films

M. K. NazeeruddinD. Di CensoR. Humphry-BakerM. Gratzel

Advanced Functional Materials. 2006. DOI : 10.1002/adfm.200500309.

Engineering of a Novel Ruthenium Sensitizer and Its Application in Dye-Sensitized Solar Cells for Conversion of Sunlight into Electricity

C. KleinM. K. NazeeruddinP. LiskaD. Di CensoN. Hirata  et al.

Inorganic Chemistry. 2005. DOI : 10.1021/ic048810p.

Synthesis of novel ruthenium sensitizers and their application in dye-sensitized solar cells

M. K. NazeeruddinC. KleinP. LiskaM. Graetzel

Coordination Chemistry Reviews. 2005. DOI : 10.1016/j.ccr.2005.03.025.

Effect of Hydrocarbon Chain Length of Amphiphilic Ruthenium Dyes on Solid-State Dye-Sensitized Photovoltaics

L. Schmidt-MendeJ. E. KroezeJ. R. DurrantM. K. NazeeruddinM. Graetzel

Nano Letters. 2005. DOI : 10.1021/nl050555y.

Organized Mesoporous TiO2 Films Exhibiting Greatly Enhanced Performance in Dye-Sensitized Solar Cells

M. ZukalovaA. ZukalL. KavanM. K. NazeeruddinP. Liska  et al.

Nano Letters. 2005. DOI : 10.1021/nl051401l.

Time dependent density functional theory study of the absorption spectrum of the [Ru(4,4'-COO--2,2'-bpy)2(X)2]4- (X=NCS, Cl) dyes in water solution

F. De AngelisS. FantacciA. SelloniM. K. Nazeeruddin

Chemical Physics Letters. 2005. DOI : 10.1016/j.cplett.2005.08.044.

Efficient Light Harvesting by Using Green Zn-Porphyrin-Sensitized Nanocrystalline TiO2 Films

Q. WangW. M. CampbellE. E. BonfantaniK. W. JolleyD. L. Officer  et al.

The Journal of Physical Chemistry B. 2005. DOI : 10.1021/jp052877w.

Combined Experimental and DFT-TDDFT Computational Study of Photoelectrochemical Cell Ruthenium Sensitizers

M. K. NazeeruddinF. De AngelisS. FantacciA. SelloniG. Viscardi  et al.

Journal of the American Chemical Society. 2005. DOI : 10.1021/ja052467l.

Stable new sensitizer with improved light harvesting for nanocrystalline dye-sensitized solar cells

P. WangS. M. ZakeeruddinJ. E. MoserR. Humphry-BakerP. Comte  et al.

Advanced Materials. 2004. DOI : 10.1002/adma.200400039.

Stepwise assembly of amphiphilic ruthenium sensitizers and their applications in dye-sensitized solar cell

M. K. NazeeruddinS. M. ZakeeruddinJ. J. LagrefP. LiskaP. Comte  et al.

Coordination Chemistry Reviews. 2004. DOI : 10.1016/j.ccr.2004.03.012.

Molecular Control of Recombination Dynamics in Dye-Sensitized Nanocrystalline TiO2 Films: Free Energy vs Distance Dependence

J. N. CliffordE. PalomaresM. K. NazeeruddinM. GraetzelJ. Nelson  et al.

Journal of the American Chemical Society. 2004. DOI : 10.1021/ja039924n.

Amphiphilic Ruthenium Sensitizers and Their Applications in Dye-Sensitized Solar Cells

C. KleinM. K. NazeeruddinD. Di CensoP. LiskaM. Graetzel

Inorganic Chemistry. 2004. DOI : 10.1021/ic049136e.

Michael Graetzel Festschrift, a tribute for his 60th Birthday

M. K. Nazeeruddin

Coordination Chemistry Reviews. 2004. DOI : 10.1016/j.ccr.2004.06.011.

Multistep Electron Transfer Processes on Dye Co-sensitized Nanocrystalline TiO2 Films

J. N. CliffordE. PalomaresM. K. NazeeruddinR. ThampiM. Graetzel  et al.

Journal of the American Chemical Society. 2004. DOI : 10.1021/ja049705h.

Supramolecular control of charge-transfer dynamics on dye-sensitized nanocrystalline TiO2 films

N. HirataJ.-J. LagrefE. J. PalomaresJ. R. DurrantM. K. Nazeeruddin  et al.

Chemistry - A European Journal. 2004. DOI : 10.1002/chem.200305408.

Dye-sensitized solar cells based on mesoscopic oxide semiconductor films

M. K. NazeeruddinM. Graetzel

Semiconductor Photochemistry and Photophysics; New York: Dekker, 2003. p. 301 - 343.

Highly Phosphorescence Iridium Complexes and their Application in Organic Light-Emitting Devices

M. K. NazeeruddinR. Humphry-BakerD. BernerS. RivierL. Zuppiroli  et al.

Journal of the American Chemical Society. 2003. DOI : 10.1021/ja021413y.

Molecular engineering on semiconductor surfaces: design, synthesis, and application of new efficient amphiphilic ruthenium photosensitizers for nanocrystalline TiO2 solar cells

J. J. LagrefM. K. NazeeruddinM. Gratzel

Synthetic Metals. 2003. DOI : 10.1016/S0379-6779(03)00034-1.

Novel Ruthenium Sensitizers Containing Functionalized Hybrid Tetradentate Ligands: Synthesis, Characterization, and INDO/S Analysis

T. RenouardR. A. FallahpourM. K. NazeeruddinR. Humphry-BakerS. I. Gorelsky  et al.

Inorganic Chemistry. 2002. DOI : 10.1021/ic010512u.

Design, synthesis, and application of amphiphilic ruthenium polypyridyl photosensitizers in solar cells based on nanocrystalline TiO2 films

S. M. ZakeeruddinM. K. NazeeruddinR. Humphry-BakerP. PechyP. Quagliotto  et al.

Langmuir. 2002. DOI : 10.1021/la0110848.

Structural Characterization of Solar Cell Prototypes Based on Nanocrystalline TiO2 Anatase Sensitized with Ru Complexes. X-ray Diffraction, XPS, and XAFS Spectroscopy Study

Y. V. ZubavichusY. L. SlovokhotovM. K. NazeeruddinS. M. ZakeeruddinM. Graetzel  et al.

Chemistry of Materials. 2002. DOI : 10.1021/cm020123d.

Electron injection kinetics for the nanocrystalline TiO2 films sensitized with the dye (Bu4N)2Ru(dcbpyH)2(NCS)2

Y. TachibanaM. K. NazeeruddinM. GratzelD. R. KlugJ. R. Durrant

Chemical Physics. 2002. DOI : 10.1016/S0301-0104(02)00695-X.

Separation of linkage isomers of trithiocyanato (4,4',4''-tricarboxy-2,2',6,2''-terpyridine)ruthenium(II) by pH-titration method and their application in nanocrystalline TiO2-based solar cells

M. K. NazeeruddinM. Gratzel

Journal of Photochemistry and Photobiology A: Chemistry. 2001. DOI : 10.1016/S1010-6030(01)00572-X.

CoII(dbbip)22+ Complex Rivals Tri-iodide/Iodide Redox Mediator in Dye-Sensitized Photovoltaic Cells

H. NusbaumerJ.-E. MoserS. M. ZakeeruddinM. K. NazeeruddinM. Graetzel

The Journal of Physical Chemistry B. 2001. DOI : 10.1021/jp012075a.

Development status of dye-sensitized nanocrystalline photovoltaic devices

A. J. McEvoyM. K. NazeeruddinG. RothenbergerM. Gratzel

2001. p. 69 - 81.

Synthesis, spectroscopic and a ZINDO study of cis- and trans-(X2)bis(4,4'-dicarboxylic acid-2,2'-bipyridine)ruthenium(II) complexes (X = Cl-, H2O, NCS-)

M. K. NazeeruddinS. M. ZakeeruddinR. Humphry-BakerS. I. GorelskyA. B. P. Lever  et al.

Coordination Chemistry Reviews. 2000. DOI : 10.1016/S0010-8545(00)00338-6.

Dye and materials development for sensitized electrochemical photovoltaics

M. AmirnasrK. G. BrooksA. J. McEvoyM. K. NazeeruddinP. Pechy  et al.

2000. p. 28 - 31.

Adsorption Studies of Counterions Carried by the Sensitizer cis-Dithiocyanato(2,2'-bipyridyl-4,4'-dicarboxylate) Ruthenium(II) on Nanocrystalline TiO2 Films

M. K. NazeeruddinM. AmirnasrP. ComteJ. R. MackayA. J. McQuillan  et al.

Langmuir. 2000. DOI : 10.1021/la000685g.

A new efficient photosensitizer for nanocrystalline solar cells: synthesis and characterization of cis-bis(4,7-dicarboxy-1,10-phenanthroline)dithiocyanato ruthenium(II)

M. YanagidaL. P. SinghK. SayamaK. HaraR. Katoh  et al.

Dalton Transactions. 2000. DOI : 10.1039/B002391O.

Thermal stability of cis-dithiocyanato(2,2'-bipyridyl-4,4'-dicarboxylate)ruthenium(II) photosensitizer in the free form and on nanocrystalline TiO2 films

M. AmirnasrM. K. NazeeruddinM. Gratzel

Thermochimica Acta. 2000. DOI : 10.1016/S0040-6031(99)00486-4.

Efficient near-IR sensitization of nanocrystalline TiO2 films by zinc and aluminum phthalocyanines

M. K. NazeeruddinR. Humphry-BakerM. GratzelD. WohrleG. Schnurpfeil  et al.

Journal of Porphyrins and Phthalocyanines. 1999. DOI : 10.1002/(SICI)1099-1409(199903)3:3<230::AID-JPP127>3.0.CO;2-L.

Preparation of transition metal phthalocyanine complexes as photosensitizers for dye solar cells

B. A. MurrerM. GraetzelM. K. Nazeeruddin

JP2001510199 ; AU734412 ; EP0998481 ; AU8224298 ; ZA9806323 ; WO9903868 ; GB9714905 . 1999.