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Modulation of Perovskite Grain Boundaries by Electron Donor–Acceptor Zwitterions R,R-Diphenylamino-phenyl-pyridinium-(CH(2))(n)-sulfonates: All-Round Improvement on the Solar Cell Performance

[Image: see text] Inverted perovskite solar cells (PSCs) have attracted intense attention because of their insignificant hysteresis and low-temperature fabrication process. However, the efficiencies of inverted PSCs are still inferior to those of commercialized silicon solar cells. Also, the poor st...

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Autores principales: Hung, Chieh-Ming, Lin, Jin-Tai, Yang, Yu-Hsuan, Liu, Yi-Chun, Gu, Mong-Wen, Chou, Tai-Che, Wang, Sheng-Fu, Chen, Zi-Qin, Wu, Chi-Chi, Chen, Li-Cyun, Hsu, Cheng-Chih, Chen, Chun-Hsien, Chiu, Ching-Wen, Chen, Hsieh-Chih, Chou, Pi-Tai
Formato: Online Artículo Texto
Lenguaje:English
Publicado: American Chemical Society 2022
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9131477/
https://www.ncbi.nlm.nih.gov/pubmed/35647592
http://dx.doi.org/10.1021/jacsau.2c00160
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author Hung, Chieh-Ming
Lin, Jin-Tai
Yang, Yu-Hsuan
Liu, Yi-Chun
Gu, Mong-Wen
Chou, Tai-Che
Wang, Sheng-Fu
Chen, Zi-Qin
Wu, Chi-Chi
Chen, Li-Cyun
Hsu, Cheng-Chih
Chen, Chun-Hsien
Chiu, Ching-Wen
Chen, Hsieh-Chih
Chou, Pi-Tai
author_facet Hung, Chieh-Ming
Lin, Jin-Tai
Yang, Yu-Hsuan
Liu, Yi-Chun
Gu, Mong-Wen
Chou, Tai-Che
Wang, Sheng-Fu
Chen, Zi-Qin
Wu, Chi-Chi
Chen, Li-Cyun
Hsu, Cheng-Chih
Chen, Chun-Hsien
Chiu, Ching-Wen
Chen, Hsieh-Chih
Chou, Pi-Tai
author_sort Hung, Chieh-Ming
collection PubMed
description [Image: see text] Inverted perovskite solar cells (PSCs) have attracted intense attention because of their insignificant hysteresis and low-temperature fabrication process. However, the efficiencies of inverted PSCs are still inferior to those of commercialized silicon solar cells. Also, the poor stability of PSCs is one of the major impedances to commercialization. Herein, we rationally designed and synthesized a new series of electron donor (R,R-diphenylamino) and acceptor (pyridimium-(CH(2))(n)-sulfonates) zwitterions as a boundary modulator and systematically investigated their associated interface properties. Comprehensive physical and optoelectronic studies verify that these zwitterions provide a four-in-one functionality: balancing charge carrier transport, suppressing less-coordinated Pb(2+) defects, enhancing moisture resistance, and reducing ion migration. Although each functionality may have been reported by specific passivating molecules, a strategy that simultaneously regulates the charge-transfer balance and three other functionalities has not yet been developed. The results are to make an omnidirectional improvement of PSCs. Among all zwitterions, 4-(4-(4-(di-(4-methoxylphenyl)amino)phenyl)propane-1-ium-1-yl)butane-1-sulfonate (OMeZC3) optimizes the balance hole/electron mobility ratio of perovskite to 0.91, and the corresponding PSCs demonstrate a high power conversion efficiency (PCE) of up to 23.15% free from hysteresis, standing out as one of the champion PSCs with an inverted structure. Importantly, the OMeZC3-modified PSC exhibits excellent long-term stability, maintaining almost its initial PCE after being stored at 80% relative humidity for 35 days.
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spelling pubmed-91314772022-05-26 Modulation of Perovskite Grain Boundaries by Electron Donor–Acceptor Zwitterions R,R-Diphenylamino-phenyl-pyridinium-(CH(2))(n)-sulfonates: All-Round Improvement on the Solar Cell Performance Hung, Chieh-Ming Lin, Jin-Tai Yang, Yu-Hsuan Liu, Yi-Chun Gu, Mong-Wen Chou, Tai-Che Wang, Sheng-Fu Chen, Zi-Qin Wu, Chi-Chi Chen, Li-Cyun Hsu, Cheng-Chih Chen, Chun-Hsien Chiu, Ching-Wen Chen, Hsieh-Chih Chou, Pi-Tai JACS Au [Image: see text] Inverted perovskite solar cells (PSCs) have attracted intense attention because of their insignificant hysteresis and low-temperature fabrication process. However, the efficiencies of inverted PSCs are still inferior to those of commercialized silicon solar cells. Also, the poor stability of PSCs is one of the major impedances to commercialization. Herein, we rationally designed and synthesized a new series of electron donor (R,R-diphenylamino) and acceptor (pyridimium-(CH(2))(n)-sulfonates) zwitterions as a boundary modulator and systematically investigated their associated interface properties. Comprehensive physical and optoelectronic studies verify that these zwitterions provide a four-in-one functionality: balancing charge carrier transport, suppressing less-coordinated Pb(2+) defects, enhancing moisture resistance, and reducing ion migration. Although each functionality may have been reported by specific passivating molecules, a strategy that simultaneously regulates the charge-transfer balance and three other functionalities has not yet been developed. The results are to make an omnidirectional improvement of PSCs. Among all zwitterions, 4-(4-(4-(di-(4-methoxylphenyl)amino)phenyl)propane-1-ium-1-yl)butane-1-sulfonate (OMeZC3) optimizes the balance hole/electron mobility ratio of perovskite to 0.91, and the corresponding PSCs demonstrate a high power conversion efficiency (PCE) of up to 23.15% free from hysteresis, standing out as one of the champion PSCs with an inverted structure. Importantly, the OMeZC3-modified PSC exhibits excellent long-term stability, maintaining almost its initial PCE after being stored at 80% relative humidity for 35 days. American Chemical Society 2022-04-19 /pmc/articles/PMC9131477/ /pubmed/35647592 http://dx.doi.org/10.1021/jacsau.2c00160 Text en © 2022 The Authors. Published by American Chemical Society https://creativecommons.org/licenses/by-nc-nd/4.0/Permits non-commercial access and re-use, provided that author attribution and integrity are maintained; but does not permit creation of adaptations or other derivative works (https://creativecommons.org/licenses/by-nc-nd/4.0/).
spellingShingle Hung, Chieh-Ming
Lin, Jin-Tai
Yang, Yu-Hsuan
Liu, Yi-Chun
Gu, Mong-Wen
Chou, Tai-Che
Wang, Sheng-Fu
Chen, Zi-Qin
Wu, Chi-Chi
Chen, Li-Cyun
Hsu, Cheng-Chih
Chen, Chun-Hsien
Chiu, Ching-Wen
Chen, Hsieh-Chih
Chou, Pi-Tai
Modulation of Perovskite Grain Boundaries by Electron Donor–Acceptor Zwitterions R,R-Diphenylamino-phenyl-pyridinium-(CH(2))(n)-sulfonates: All-Round Improvement on the Solar Cell Performance
title Modulation of Perovskite Grain Boundaries by Electron Donor–Acceptor Zwitterions R,R-Diphenylamino-phenyl-pyridinium-(CH(2))(n)-sulfonates: All-Round Improvement on the Solar Cell Performance
title_full Modulation of Perovskite Grain Boundaries by Electron Donor–Acceptor Zwitterions R,R-Diphenylamino-phenyl-pyridinium-(CH(2))(n)-sulfonates: All-Round Improvement on the Solar Cell Performance
title_fullStr Modulation of Perovskite Grain Boundaries by Electron Donor–Acceptor Zwitterions R,R-Diphenylamino-phenyl-pyridinium-(CH(2))(n)-sulfonates: All-Round Improvement on the Solar Cell Performance
title_full_unstemmed Modulation of Perovskite Grain Boundaries by Electron Donor–Acceptor Zwitterions R,R-Diphenylamino-phenyl-pyridinium-(CH(2))(n)-sulfonates: All-Round Improvement on the Solar Cell Performance
title_short Modulation of Perovskite Grain Boundaries by Electron Donor–Acceptor Zwitterions R,R-Diphenylamino-phenyl-pyridinium-(CH(2))(n)-sulfonates: All-Round Improvement on the Solar Cell Performance
title_sort modulation of perovskite grain boundaries by electron donor–acceptor zwitterions r,r-diphenylamino-phenyl-pyridinium-(ch(2))(n)-sulfonates: all-round improvement on the solar cell performance
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9131477/
https://www.ncbi.nlm.nih.gov/pubmed/35647592
http://dx.doi.org/10.1021/jacsau.2c00160
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