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Br Vacancy Defects Healed Perovskite Indoor Photovoltaic Modules with Certified Power Conversion Efficiency Exceeding 36%

Indoor photovoltaics (IPVs) are expected to power the Internet of Things ecosystem, which is attracting ever‐increasing attention as part of the rapidly developing distributed communications and electronics technology. The power conversion efficiency of IPVs strongly depends on the match between typ...

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Autores principales: Zhang, Cuiling, Liu, Chong, Gao, Yanyan, Zhu, Shusheng, Chen, Fang, Huang, Boyuan, Xie, Yi, Liu, Yaqing, Ma, Mengen, Wang, Zhen, Wu, Shaohang, Schropp, Ruud E. I., Mai, Yaohua
Formato: Online Artículo Texto
Lenguaje:English
Publicado: John Wiley and Sons Inc. 2022
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9685472/
https://www.ncbi.nlm.nih.gov/pubmed/36253155
http://dx.doi.org/10.1002/advs.202204138
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author Zhang, Cuiling
Liu, Chong
Gao, Yanyan
Zhu, Shusheng
Chen, Fang
Huang, Boyuan
Xie, Yi
Liu, Yaqing
Ma, Mengen
Wang, Zhen
Wu, Shaohang
Schropp, Ruud E. I.
Mai, Yaohua
author_facet Zhang, Cuiling
Liu, Chong
Gao, Yanyan
Zhu, Shusheng
Chen, Fang
Huang, Boyuan
Xie, Yi
Liu, Yaqing
Ma, Mengen
Wang, Zhen
Wu, Shaohang
Schropp, Ruud E. I.
Mai, Yaohua
author_sort Zhang, Cuiling
collection PubMed
description Indoor photovoltaics (IPVs) are expected to power the Internet of Things ecosystem, which is attracting ever‐increasing attention as part of the rapidly developing distributed communications and electronics technology. The power conversion efficiency of IPVs strongly depends on the match between typical indoor light spectra and the band gap of the light absorbing layer. Therefore, band‐gap tunable materials, such as metal‐halide perovskites, are specifically promising candidates for approaching the indoor illumination efficiency limit of ∼56%. However, perovskite materials with ideal band gap for indoor application generally contain high bromine (Br) contents, causing inferior open‐circuit voltage (V (OC)). By fabricating a series of wide‐bandgap perovskites (Cs(0.17)FA(0.83)PbI(3−) (x) Br (x) , 0.6 ≤ x ≤ 1.6) with varying Br contents and related band gaps, it is found that, the high Br vacancy (V(Br)) defect density is a significant reason that leading to large V (OC) deficits apart from the well‐accepted halide segregation. The introduction of I‐rich alkali metal small‐molecule compounds is demonstrated to suppress the V(Br) and increase the V (OC) of perovskite IPVs up to 1.05 V under 1000 lux light‐emitting diode illumination, one of the highest V (OC) values reported so far. More importantly, the modules are sent for independent certification and have gained a record efficiency of 36.36%.
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spelling pubmed-96854722022-11-25 Br Vacancy Defects Healed Perovskite Indoor Photovoltaic Modules with Certified Power Conversion Efficiency Exceeding 36% Zhang, Cuiling Liu, Chong Gao, Yanyan Zhu, Shusheng Chen, Fang Huang, Boyuan Xie, Yi Liu, Yaqing Ma, Mengen Wang, Zhen Wu, Shaohang Schropp, Ruud E. I. Mai, Yaohua Adv Sci (Weinh) Research Articles Indoor photovoltaics (IPVs) are expected to power the Internet of Things ecosystem, which is attracting ever‐increasing attention as part of the rapidly developing distributed communications and electronics technology. The power conversion efficiency of IPVs strongly depends on the match between typical indoor light spectra and the band gap of the light absorbing layer. Therefore, band‐gap tunable materials, such as metal‐halide perovskites, are specifically promising candidates for approaching the indoor illumination efficiency limit of ∼56%. However, perovskite materials with ideal band gap for indoor application generally contain high bromine (Br) contents, causing inferior open‐circuit voltage (V (OC)). By fabricating a series of wide‐bandgap perovskites (Cs(0.17)FA(0.83)PbI(3−) (x) Br (x) , 0.6 ≤ x ≤ 1.6) with varying Br contents and related band gaps, it is found that, the high Br vacancy (V(Br)) defect density is a significant reason that leading to large V (OC) deficits apart from the well‐accepted halide segregation. The introduction of I‐rich alkali metal small‐molecule compounds is demonstrated to suppress the V(Br) and increase the V (OC) of perovskite IPVs up to 1.05 V under 1000 lux light‐emitting diode illumination, one of the highest V (OC) values reported so far. More importantly, the modules are sent for independent certification and have gained a record efficiency of 36.36%. John Wiley and Sons Inc. 2022-10-17 /pmc/articles/PMC9685472/ /pubmed/36253155 http://dx.doi.org/10.1002/advs.202204138 Text en © 2022 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 Research Articles
Zhang, Cuiling
Liu, Chong
Gao, Yanyan
Zhu, Shusheng
Chen, Fang
Huang, Boyuan
Xie, Yi
Liu, Yaqing
Ma, Mengen
Wang, Zhen
Wu, Shaohang
Schropp, Ruud E. I.
Mai, Yaohua
Br Vacancy Defects Healed Perovskite Indoor Photovoltaic Modules with Certified Power Conversion Efficiency Exceeding 36%
title Br Vacancy Defects Healed Perovskite Indoor Photovoltaic Modules with Certified Power Conversion Efficiency Exceeding 36%
title_full Br Vacancy Defects Healed Perovskite Indoor Photovoltaic Modules with Certified Power Conversion Efficiency Exceeding 36%
title_fullStr Br Vacancy Defects Healed Perovskite Indoor Photovoltaic Modules with Certified Power Conversion Efficiency Exceeding 36%
title_full_unstemmed Br Vacancy Defects Healed Perovskite Indoor Photovoltaic Modules with Certified Power Conversion Efficiency Exceeding 36%
title_short Br Vacancy Defects Healed Perovskite Indoor Photovoltaic Modules with Certified Power Conversion Efficiency Exceeding 36%
title_sort br vacancy defects healed perovskite indoor photovoltaic modules with certified power conversion efficiency exceeding 36%
topic Research Articles
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9685472/
https://www.ncbi.nlm.nih.gov/pubmed/36253155
http://dx.doi.org/10.1002/advs.202204138
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