Literature DB >> 34079136

CO2 doping of organic interlayers for perovskite solar cells.

Jaemin Kong1, Yongwoo Shin2, Jason A Röhr1, Hang Wang1, Juan Meng1, Yueshen Wu3, Adlai Katzenberg1, Geunjin Kim4, Dong Young Kim5, Tai-De Li6,7, Edward Chau1, Francisco Antonio8, Tana Siboonruang1, Sooncheol Kwon9, Kwanghee Lee10,11, Jin Ryoun Kim1, Miguel A Modestino1, Hailiang Wang3, André D Taylor12,13.   

Abstract

In perovskite solar cells, doped organic semiconductors are often used as charge-extraction interlayers situated between the photoactive layer and the electrodes. The π-conjugated small molecule 2,2',7,7'-tetrakis[N,N-di(4-methoxyphenyl)amino]-9,9-spirobifluorene (spiro-OMeTAD) is the most frequently used semiconductor in the hole-conducting layer1-6, and its electrical properties considerably affect the charge collection efficiencies of the solar cell7. To enhance the electrical conductivity of spiro-OMeTAD, lithium bis(trifluoromethane)sulfonimide (LiTFSI) is typically used in a doping process, which is conventionally initiated by exposing spiro-OMeTAD:LiTFSI blend films to air and light for several hours. This process, in which oxygen acts as the p-type dopant8-11, is time-intensive and largely depends on ambient conditions, and thus hinders the commercialization of perovskite solar cells. Here we report a fast and reproducible doping method that involves bubbling a spiro-OMeTAD:LiTFSI solution with CO2 under ultraviolet light. CO2 obtains electrons from photoexcited spiro-OMeTAD, rapidly promoting its p-type doping and resulting in the precipitation of carbonates. The CO2-treated interlayer exhibits approximately 100 times higher conductivity than a pristine film while realizing stable, high-efficiency perovskite solar cells without any post-treatments. We also show that this method can be used to dope π-conjugated polymers.

Entities:  

Year:  2021        PMID: 34079136     DOI: 10.1038/s41586-021-03518-y

Source DB:  PubMed          Journal:  Nature        ISSN: 0028-0836            Impact factor:   49.962


  16 in total

1.  Spectrum-Dependent Spiro-OMeTAD Oxidization Mechanism in Perovskite Solar Cells.

Authors:  Shen Wang; Wen Yuan; Ying Shirley Meng
Journal:  ACS Appl Mater Interfaces       Date:  2015-10-27       Impact factor: 9.229

Review 2.  Impact of Interfacial Layers in Perovskite Solar Cells.

Authors:  An-Na Cho; Nam-Gyu Park
Journal:  ChemSusChem       Date:  2017-09-25       Impact factor: 8.928

3.  Efficient and stable solution-processed planar perovskite solar cells via contact passivation.

Authors:  Hairen Tan; Ankit Jain; Oleksandr Voznyy; Xinzheng Lan; F Pelayo García de Arquer; James Z Fan; Rafael Quintero-Bermudez; Mingjian Yuan; Bo Zhang; Yicheng Zhao; Fengjia Fan; Peicheng Li; Li Na Quan; Yongbiao Zhao; Zheng-Hong Lu; Zhenyu Yang; Sjoerd Hoogland; Edward H Sargent
Journal:  Science       Date:  2017-02-02       Impact factor: 47.728

4.  Electrochemical considerations for determining absolute frontier orbital energy levels of conjugated polymers for solar cell applications.

Authors:  Claudia M Cardona; Wei Li; Angel E Kaifer; David Stockdale; Guillermo C Bazan
Journal:  Adv Mater       Date:  2011-05-24       Impact factor: 30.849

5.  Lithium salts as "redox active" p-type dopants for organic semiconductors and their impact in solid-state dye-sensitized solar cells.

Authors:  Antonio Abate; Tomas Leijtens; Sandeep Pathak; Joël Teuscher; Roberto Avolio; Maria E Errico; James Kirkpatrik; James M Ball; Pablo Docampo; Ian McPherson; Henry J Snaith
Journal:  Phys Chem Chem Phys       Date:  2013-01-11       Impact factor: 3.676

6.  Electrocatalytic and homogeneous approaches to conversion of CO2 to liquid fuels.

Authors:  Eric E Benson; Clifford P Kubiak; Aaron J Sathrum; Jonathan M Smieja
Journal:  Chem Soc Rev       Date:  2008-10-24       Impact factor: 54.564

7.  Understanding Degradation Mechanisms and Improving Stability of Perovskite Photovoltaics.

Authors:  Caleb C Boyd; Rongrong Cheacharoen; Tomas Leijtens; Michael D McGehee
Journal:  Chem Rev       Date:  2018-11-16       Impact factor: 60.622

8.  Oxygen-induced doping of spiro-MeOTAD in solid-state dye-sensitized solar cells and its impact on device performance.

Authors:  Ute B Cappel; Torben Daeneke; Udo Bach
Journal:  Nano Lett       Date:  2012-08-24       Impact factor: 11.189

9.  Enhancing the hole-conductivity of spiro-OMeTAD without oxygen or lithium salts by using spiro(TFSI)₂ in perovskite and dye-sensitized solar cells.

Authors:  William H Nguyen; Colin D Bailie; Eva L Unger; Michael D McGehee
Journal:  J Am Chem Soc       Date:  2014-07-29       Impact factor: 15.419

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

Authors:  Michael Saliba; Taisuke Matsui; Ji-Youn Seo; Konrad Domanski; Juan-Pablo Correa-Baena; Mohammad Khaja Nazeeruddin; Shaik M Zakeeruddin; Wolfgang Tress; Antonio Abate; Anders Hagfeldt; Michael Grätzel
Journal:  Energy Environ Sci       Date:  2016-03-29       Impact factor: 38.532

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  2 in total

1.  Oxidized Spiro-OMeTAD: Investigation of Stability in Contact with Various Perovskite Compositions.

Authors:  Ernestas Kasparavicius; Marius Franckevičius; Vida Malinauskiene; Kristijonas Genevičius; Vytautas Getautis; Tadas Malinauskas
Journal:  ACS Appl Energy Mater       Date:  2021-12-13

2.  85 °C/85%-Stable n-i-p Perovskite Photovoltaics with NiOx Hole Transport Layers Promoted By Perovskite Quantum Dots.

Authors:  Fangwen Cheng; Fang Cao; Binwen Chen; Xinfeng Dai; Ziheng Tang; Yifei Sun; Jun Yin; Jing Li; Nanfeng Zheng; Binghui Wu
Journal:  Adv Sci (Weinh)       Date:  2022-07-20       Impact factor: 17.521

  2 in total

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