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15.3% Efficiency All‐Small‐Molecule Organic Solar Cells Achieved by a Locally Asymmetric F, Cl Disubstitution Strategy

Single junction binary all‐small‐molecule (ASM) organic solar cells (OSCs) with power conversion efficiency (PCE) beyond 14% are achieved by using non‐fullerene acceptor Y6 as the electron acceptor, but still lag behind that of polymer OSCs. Herein, an asymmetric Y6‐like acceptor, BTP‐FCl‐FCl, is de...

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Autores principales: Hu, Dingqin, Yang, Qianguang, Zheng, Yujie, Tang, Hua, Chung, Sein, Singh, Ranbir, Lv, Jie, Fu, Jiehao, Kan, Zhipeng, Qin, Bo, Chen, Qianqian, Liao, Zhihui, Chen, Haiyan, Xiao, Zeyun, Sun, Kuan, Lu, Shirong
Formato: Online Artículo Texto
Lenguaje:English
Publicado: John Wiley and Sons Inc. 2021
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8061398/
https://www.ncbi.nlm.nih.gov/pubmed/33898196
http://dx.doi.org/10.1002/advs.202004262
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author Hu, Dingqin
Yang, Qianguang
Zheng, Yujie
Tang, Hua
Chung, Sein
Singh, Ranbir
Lv, Jie
Fu, Jiehao
Kan, Zhipeng
Qin, Bo
Chen, Qianqian
Liao, Zhihui
Chen, Haiyan
Xiao, Zeyun
Sun, Kuan
Lu, Shirong
author_facet Hu, Dingqin
Yang, Qianguang
Zheng, Yujie
Tang, Hua
Chung, Sein
Singh, Ranbir
Lv, Jie
Fu, Jiehao
Kan, Zhipeng
Qin, Bo
Chen, Qianqian
Liao, Zhihui
Chen, Haiyan
Xiao, Zeyun
Sun, Kuan
Lu, Shirong
author_sort Hu, Dingqin
collection PubMed
description Single junction binary all‐small‐molecule (ASM) organic solar cells (OSCs) with power conversion efficiency (PCE) beyond 14% are achieved by using non‐fullerene acceptor Y6 as the electron acceptor, but still lag behind that of polymer OSCs. Herein, an asymmetric Y6‐like acceptor, BTP‐FCl‐FCl, is designed and synthesized to match the recently reported high performance small molecule donor BTR‐Cl, and a record efficiency of 15.3% for single‐junction binary ASM OSCs is achieved. BTP‐FCl‐FCl features a F,Cl disubstitution on the same end group affording locally asymmetric structures, and so has a lower total dipole moment, larger average electronic static potential, and lower distribution disorder than those of the globally asymmetric isomer BTP‐2F‐2Cl, resulting in improved charge generation and extraction. In addition, BTP‐FCl‐FCl based active layer presents more favorable domain size and finer phase separation contributing to the faster charge extraction, longer charge carrier lifetime, and much lower recombination rate. Therefore, compared with BTP‐2F‐2Cl, BTP‐FCl‐FCl based devices provide better performance with FF enhanced from 71.41% to 75.36% and J (sc) increased from 22.35 to 24.58 mA cm(−2), leading to a higher PCE of 15.3%. The locally asymmetric F, Cl disubstitution on the same end group is a new strategy to achieve high performance ASM OSCs.
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spelling pubmed-80613982021-04-23 15.3% Efficiency All‐Small‐Molecule Organic Solar Cells Achieved by a Locally Asymmetric F, Cl Disubstitution Strategy Hu, Dingqin Yang, Qianguang Zheng, Yujie Tang, Hua Chung, Sein Singh, Ranbir Lv, Jie Fu, Jiehao Kan, Zhipeng Qin, Bo Chen, Qianqian Liao, Zhihui Chen, Haiyan Xiao, Zeyun Sun, Kuan Lu, Shirong Adv Sci (Weinh) Full Papers Single junction binary all‐small‐molecule (ASM) organic solar cells (OSCs) with power conversion efficiency (PCE) beyond 14% are achieved by using non‐fullerene acceptor Y6 as the electron acceptor, but still lag behind that of polymer OSCs. Herein, an asymmetric Y6‐like acceptor, BTP‐FCl‐FCl, is designed and synthesized to match the recently reported high performance small molecule donor BTR‐Cl, and a record efficiency of 15.3% for single‐junction binary ASM OSCs is achieved. BTP‐FCl‐FCl features a F,Cl disubstitution on the same end group affording locally asymmetric structures, and so has a lower total dipole moment, larger average electronic static potential, and lower distribution disorder than those of the globally asymmetric isomer BTP‐2F‐2Cl, resulting in improved charge generation and extraction. In addition, BTP‐FCl‐FCl based active layer presents more favorable domain size and finer phase separation contributing to the faster charge extraction, longer charge carrier lifetime, and much lower recombination rate. Therefore, compared with BTP‐2F‐2Cl, BTP‐FCl‐FCl based devices provide better performance with FF enhanced from 71.41% to 75.36% and J (sc) increased from 22.35 to 24.58 mA cm(−2), leading to a higher PCE of 15.3%. The locally asymmetric F, Cl disubstitution on the same end group is a new strategy to achieve high performance ASM OSCs. John Wiley and Sons Inc. 2021-02-22 /pmc/articles/PMC8061398/ /pubmed/33898196 http://dx.doi.org/10.1002/advs.202004262 Text en © 2021 The Authors. Advanced Science published by Wiley‐VCH GmbH https://creativecommons.org/licenses/by/4.0/This is an open access article under the terms of the http://creativecommons.org/licenses/by/4.0/ (https://creativecommons.org/licenses/by/4.0/) License, which permits use, distribution and reproduction in any medium, provided the original work is properly cited.
spellingShingle Full Papers
Hu, Dingqin
Yang, Qianguang
Zheng, Yujie
Tang, Hua
Chung, Sein
Singh, Ranbir
Lv, Jie
Fu, Jiehao
Kan, Zhipeng
Qin, Bo
Chen, Qianqian
Liao, Zhihui
Chen, Haiyan
Xiao, Zeyun
Sun, Kuan
Lu, Shirong
15.3% Efficiency All‐Small‐Molecule Organic Solar Cells Achieved by a Locally Asymmetric F, Cl Disubstitution Strategy
title 15.3% Efficiency All‐Small‐Molecule Organic Solar Cells Achieved by a Locally Asymmetric F, Cl Disubstitution Strategy
title_full 15.3% Efficiency All‐Small‐Molecule Organic Solar Cells Achieved by a Locally Asymmetric F, Cl Disubstitution Strategy
title_fullStr 15.3% Efficiency All‐Small‐Molecule Organic Solar Cells Achieved by a Locally Asymmetric F, Cl Disubstitution Strategy
title_full_unstemmed 15.3% Efficiency All‐Small‐Molecule Organic Solar Cells Achieved by a Locally Asymmetric F, Cl Disubstitution Strategy
title_short 15.3% Efficiency All‐Small‐Molecule Organic Solar Cells Achieved by a Locally Asymmetric F, Cl Disubstitution Strategy
title_sort 15.3% efficiency all‐small‐molecule organic solar cells achieved by a locally asymmetric f, cl disubstitution strategy
topic Full Papers
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8061398/
https://www.ncbi.nlm.nih.gov/pubmed/33898196
http://dx.doi.org/10.1002/advs.202004262
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