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The Highly Accurate Interatomic Potential of CsPbBr(3) Perovskite with Temperature Dependence on the Structure and Thermal Properties

CsPbBr(3) perovskite has excellent optoelectronic properties and many important application prospects in solar cells, photodetectors, high-energy radiation detectors and other fields. For this kind of perovskite structure, to theoretically predict its macroscopic properties through molecular dynamic...

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Autores principales: You, Qianyu, Gu, Shun, Gou, Xiaofan
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2023
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10004010/
https://www.ncbi.nlm.nih.gov/pubmed/36903156
http://dx.doi.org/10.3390/ma16052043
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author You, Qianyu
Gu, Shun
Gou, Xiaofan
author_facet You, Qianyu
Gu, Shun
Gou, Xiaofan
author_sort You, Qianyu
collection PubMed
description CsPbBr(3) perovskite has excellent optoelectronic properties and many important application prospects in solar cells, photodetectors, high-energy radiation detectors and other fields. For this kind of perovskite structure, to theoretically predict its macroscopic properties through molecular dynamic (MD) simulations, a highly accurate interatomic potential is first necessary. In this article, a new classical interatomic potential for CsPbBr(3) was developed within the framework of the bond-valence (BV) theory. The optimized parameters of the BV model were calculated through first-principle and intelligent optimization algorithms. Calculated lattice parameters and elastic constants for the isobaric–isothermal ensemble (NPT) by our model are in accordance with the experimental data within a reasonable error and have a higher accuracy than the traditional Born–Mayer (BM) model. In our potential model, the temperature dependence of CsPbBr(3) structural properties, such as radial distribution functions and interatomic bond lengths, was calculated. Moreover, the temperature-driven phase transition was found, and the phase transition temperature was close to the experimental value. The thermal conductivities of different crystal phases were further calculated, which agreed with the experimental data. All these comparative studies proved that the proposed atomic bond potential is highly accurate, and thus, by using this interatomic potential, the structural stability and mechanical and thermal properties of pure inorganic halide and mixed halide perovskites can be effectively predicted.
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spelling pubmed-100040102023-03-11 The Highly Accurate Interatomic Potential of CsPbBr(3) Perovskite with Temperature Dependence on the Structure and Thermal Properties You, Qianyu Gu, Shun Gou, Xiaofan Materials (Basel) Article CsPbBr(3) perovskite has excellent optoelectronic properties and many important application prospects in solar cells, photodetectors, high-energy radiation detectors and other fields. For this kind of perovskite structure, to theoretically predict its macroscopic properties through molecular dynamic (MD) simulations, a highly accurate interatomic potential is first necessary. In this article, a new classical interatomic potential for CsPbBr(3) was developed within the framework of the bond-valence (BV) theory. The optimized parameters of the BV model were calculated through first-principle and intelligent optimization algorithms. Calculated lattice parameters and elastic constants for the isobaric–isothermal ensemble (NPT) by our model are in accordance with the experimental data within a reasonable error and have a higher accuracy than the traditional Born–Mayer (BM) model. In our potential model, the temperature dependence of CsPbBr(3) structural properties, such as radial distribution functions and interatomic bond lengths, was calculated. Moreover, the temperature-driven phase transition was found, and the phase transition temperature was close to the experimental value. The thermal conductivities of different crystal phases were further calculated, which agreed with the experimental data. All these comparative studies proved that the proposed atomic bond potential is highly accurate, and thus, by using this interatomic potential, the structural stability and mechanical and thermal properties of pure inorganic halide and mixed halide perovskites can be effectively predicted. MDPI 2023-03-01 /pmc/articles/PMC10004010/ /pubmed/36903156 http://dx.doi.org/10.3390/ma16052043 Text en © 2023 by the authors. https://creativecommons.org/licenses/by/4.0/Licensee MDPI, Basel, Switzerland. This article is an open access article distributed under the terms and conditions of the Creative Commons Attribution (CC BY) license (https://creativecommons.org/licenses/by/4.0/).
spellingShingle Article
You, Qianyu
Gu, Shun
Gou, Xiaofan
The Highly Accurate Interatomic Potential of CsPbBr(3) Perovskite with Temperature Dependence on the Structure and Thermal Properties
title The Highly Accurate Interatomic Potential of CsPbBr(3) Perovskite with Temperature Dependence on the Structure and Thermal Properties
title_full The Highly Accurate Interatomic Potential of CsPbBr(3) Perovskite with Temperature Dependence on the Structure and Thermal Properties
title_fullStr The Highly Accurate Interatomic Potential of CsPbBr(3) Perovskite with Temperature Dependence on the Structure and Thermal Properties
title_full_unstemmed The Highly Accurate Interatomic Potential of CsPbBr(3) Perovskite with Temperature Dependence on the Structure and Thermal Properties
title_short The Highly Accurate Interatomic Potential of CsPbBr(3) Perovskite with Temperature Dependence on the Structure and Thermal Properties
title_sort highly accurate interatomic potential of cspbbr(3) perovskite with temperature dependence on the structure and thermal properties
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10004010/
https://www.ncbi.nlm.nih.gov/pubmed/36903156
http://dx.doi.org/10.3390/ma16052043
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