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Computational prediction of structural, electronic, and optical properties and phase stability of double perovskites K(2)SnX(6) (X = I, Br, Cl)

The vacancy-ordered double perovskites K(2)SnX(6) (X = I, Br, Cl) attract significant research interest due to their potential applications as light absorbing materials in perovskite solar cells. However, deeper insight into their material properties at the atomic scale is currently lacking. Here we...

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Autores principales: Jong, Un-Gi, Yu, Chol-Jun, Kye, Yun-Hyok
Formato: Online Artículo Texto
Lenguaje:English
Publicado: The Royal Society of Chemistry 2019
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9048279/
https://www.ncbi.nlm.nih.gov/pubmed/35492571
http://dx.doi.org/10.1039/c9ra09232c
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author Jong, Un-Gi
Yu, Chol-Jun
Kye, Yun-Hyok
author_facet Jong, Un-Gi
Yu, Chol-Jun
Kye, Yun-Hyok
author_sort Jong, Un-Gi
collection PubMed
description The vacancy-ordered double perovskites K(2)SnX(6) (X = I, Br, Cl) attract significant research interest due to their potential applications as light absorbing materials in perovskite solar cells. However, deeper insight into their material properties at the atomic scale is currently lacking. Here we present a systematic investigation of the structural, electronic, and optical properties and phase stabilities of the cubic, tetragonal, and monoclinic phases based on density functional theory calculations. Quantitatively reliable predictions of lattice constants, band gaps, effective masses of charge carriers, and exciton binding energies are provided and compared with the available experimental data, revealing the tendency of the band gap and exciton binding energy to increase on lowering the crystallographic symmetry from cubic to monoclinic and on moving from I to Cl. We highlight that cubic K(2)SnBr(6) and monoclinic K(2)SnI(6) are suitable for applications as light absorbers for solar cell devices due to their appropriate band gaps of 1.65 and 1.16 eV and low exciton binding energies of 59.4 and 15.3 meV, respectively. The constant-volume Helmholtz free energies are determined through phonon calculations, which predict phase transition temperatures of 449, 433 and 281 K for cubic–tetragonal and 345, 301 and 210 K for tetragonal–monoclinic transitions for X = I, Br and Cl, respectively. Our calculations provide an understanding of the material properties of the vacancy-ordered double perovskites K(2)SnX(6), which could help in devising a low-cost and high performance perovskite solar cell.
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spelling pubmed-90482792022-04-28 Computational prediction of structural, electronic, and optical properties and phase stability of double perovskites K(2)SnX(6) (X = I, Br, Cl) Jong, Un-Gi Yu, Chol-Jun Kye, Yun-Hyok RSC Adv Chemistry The vacancy-ordered double perovskites K(2)SnX(6) (X = I, Br, Cl) attract significant research interest due to their potential applications as light absorbing materials in perovskite solar cells. However, deeper insight into their material properties at the atomic scale is currently lacking. Here we present a systematic investigation of the structural, electronic, and optical properties and phase stabilities of the cubic, tetragonal, and monoclinic phases based on density functional theory calculations. Quantitatively reliable predictions of lattice constants, band gaps, effective masses of charge carriers, and exciton binding energies are provided and compared with the available experimental data, revealing the tendency of the band gap and exciton binding energy to increase on lowering the crystallographic symmetry from cubic to monoclinic and on moving from I to Cl. We highlight that cubic K(2)SnBr(6) and monoclinic K(2)SnI(6) are suitable for applications as light absorbers for solar cell devices due to their appropriate band gaps of 1.65 and 1.16 eV and low exciton binding energies of 59.4 and 15.3 meV, respectively. The constant-volume Helmholtz free energies are determined through phonon calculations, which predict phase transition temperatures of 449, 433 and 281 K for cubic–tetragonal and 345, 301 and 210 K for tetragonal–monoclinic transitions for X = I, Br and Cl, respectively. Our calculations provide an understanding of the material properties of the vacancy-ordered double perovskites K(2)SnX(6), which could help in devising a low-cost and high performance perovskite solar cell. The Royal Society of Chemistry 2019-12-24 /pmc/articles/PMC9048279/ /pubmed/35492571 http://dx.doi.org/10.1039/c9ra09232c Text en This journal is © The Royal Society of Chemistry https://creativecommons.org/licenses/by/3.0/
spellingShingle Chemistry
Jong, Un-Gi
Yu, Chol-Jun
Kye, Yun-Hyok
Computational prediction of structural, electronic, and optical properties and phase stability of double perovskites K(2)SnX(6) (X = I, Br, Cl)
title Computational prediction of structural, electronic, and optical properties and phase stability of double perovskites K(2)SnX(6) (X = I, Br, Cl)
title_full Computational prediction of structural, electronic, and optical properties and phase stability of double perovskites K(2)SnX(6) (X = I, Br, Cl)
title_fullStr Computational prediction of structural, electronic, and optical properties and phase stability of double perovskites K(2)SnX(6) (X = I, Br, Cl)
title_full_unstemmed Computational prediction of structural, electronic, and optical properties and phase stability of double perovskites K(2)SnX(6) (X = I, Br, Cl)
title_short Computational prediction of structural, electronic, and optical properties and phase stability of double perovskites K(2)SnX(6) (X = I, Br, Cl)
title_sort computational prediction of structural, electronic, and optical properties and phase stability of double perovskites k(2)snx(6) (x = i, br, cl)
topic Chemistry
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9048279/
https://www.ncbi.nlm.nih.gov/pubmed/35492571
http://dx.doi.org/10.1039/c9ra09232c
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