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Studies on the Light-Induced Phase Transition of CsPbBr(3) Metal Halide Perovskite Materials

[Image: see text] We investigate the internal mechanism of the light-induced phase transition of CsPbBr(3) perovskite materials via density functional theory simulations. Although CsPbBr(3) tends to appear in the orthorhombic structure, it can be changed easily by external stimulus. We find that the...

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Autores principales: Cao, Chenyu, Xue, Shaoming, Liu, Fangchao, Wu, Qiaoqian, Wu, Jialin, Zhang, Zhenkui, Guan, ChengBo, Cong, Wei-Yan, Lu, Ying-Bo
Formato: Online Artículo Texto
Lenguaje:English
Publicado: American Chemical Society 2023
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10249393/
https://www.ncbi.nlm.nih.gov/pubmed/37305233
http://dx.doi.org/10.1021/acsomega.3c02378
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author Cao, Chenyu
Xue, Shaoming
Liu, Fangchao
Wu, Qiaoqian
Wu, Jialin
Zhang, Zhenkui
Guan, ChengBo
Cong, Wei-Yan
Lu, Ying-Bo
author_facet Cao, Chenyu
Xue, Shaoming
Liu, Fangchao
Wu, Qiaoqian
Wu, Jialin
Zhang, Zhenkui
Guan, ChengBo
Cong, Wei-Yan
Lu, Ying-Bo
author_sort Cao, Chenyu
collection PubMed
description [Image: see text] We investigate the internal mechanism of the light-induced phase transition of CsPbBr(3) perovskite materials via density functional theory simulations. Although CsPbBr(3) tends to appear in the orthorhombic structure, it can be changed easily by external stimulus. We find that the transition of photogenerated carriers plays the decisive role in this process. When the photogenerated carriers transit from the valence band maximum to conduction band minimum in the reciprocal space, they actually transit from Br ions to Pb ions in the real space, which are taken away by the Br atoms with higher electronegativity from Pb atoms during the initial formation of the CsPbBr(3) lattice. The reverse transition of valence electrons leads to the weakening of bond strength, which is proved by our calculated Bader charge, electron localization function, and integral value of COHP results. This charge transition releases the distortion of the Pb–Br octahedral framework and expands the CsPbBr(3) lattice, providing possibilities to the phase transition from the orthorhombic structure to tetragonal structure. This phase transition is a self-accelerating positive feedback process, increasing the light absorption efficiency of the CsPbBr(3) material, which is of great significance for the widespread promotion and application of the photostriction effect. Our results are helpful to understand the performance of CsPbBr(3) perovskite under a light irradiation environment.
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spelling pubmed-102493932023-06-09 Studies on the Light-Induced Phase Transition of CsPbBr(3) Metal Halide Perovskite Materials Cao, Chenyu Xue, Shaoming Liu, Fangchao Wu, Qiaoqian Wu, Jialin Zhang, Zhenkui Guan, ChengBo Cong, Wei-Yan Lu, Ying-Bo ACS Omega [Image: see text] We investigate the internal mechanism of the light-induced phase transition of CsPbBr(3) perovskite materials via density functional theory simulations. Although CsPbBr(3) tends to appear in the orthorhombic structure, it can be changed easily by external stimulus. We find that the transition of photogenerated carriers plays the decisive role in this process. When the photogenerated carriers transit from the valence band maximum to conduction band minimum in the reciprocal space, they actually transit from Br ions to Pb ions in the real space, which are taken away by the Br atoms with higher electronegativity from Pb atoms during the initial formation of the CsPbBr(3) lattice. The reverse transition of valence electrons leads to the weakening of bond strength, which is proved by our calculated Bader charge, electron localization function, and integral value of COHP results. This charge transition releases the distortion of the Pb–Br octahedral framework and expands the CsPbBr(3) lattice, providing possibilities to the phase transition from the orthorhombic structure to tetragonal structure. This phase transition is a self-accelerating positive feedback process, increasing the light absorption efficiency of the CsPbBr(3) material, which is of great significance for the widespread promotion and application of the photostriction effect. Our results are helpful to understand the performance of CsPbBr(3) perovskite under a light irradiation environment. American Chemical Society 2023-05-24 /pmc/articles/PMC10249393/ /pubmed/37305233 http://dx.doi.org/10.1021/acsomega.3c02378 Text en © 2023 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 Cao, Chenyu
Xue, Shaoming
Liu, Fangchao
Wu, Qiaoqian
Wu, Jialin
Zhang, Zhenkui
Guan, ChengBo
Cong, Wei-Yan
Lu, Ying-Bo
Studies on the Light-Induced Phase Transition of CsPbBr(3) Metal Halide Perovskite Materials
title Studies on the Light-Induced Phase Transition of CsPbBr(3) Metal Halide Perovskite Materials
title_full Studies on the Light-Induced Phase Transition of CsPbBr(3) Metal Halide Perovskite Materials
title_fullStr Studies on the Light-Induced Phase Transition of CsPbBr(3) Metal Halide Perovskite Materials
title_full_unstemmed Studies on the Light-Induced Phase Transition of CsPbBr(3) Metal Halide Perovskite Materials
title_short Studies on the Light-Induced Phase Transition of CsPbBr(3) Metal Halide Perovskite Materials
title_sort studies on the light-induced phase transition of cspbbr(3) metal halide perovskite materials
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10249393/
https://www.ncbi.nlm.nih.gov/pubmed/37305233
http://dx.doi.org/10.1021/acsomega.3c02378
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