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Mono- and Co-Doped Mn-Doped CsPbCl(3) Perovskites with Enhanced Doping Efficiency and Photoluminescent Performance

To investigate the effect of Mn and other metal dopants on the photoelectronic performance of CsPbCl(3) perovskites, we conducted a series of theoretical analyses. Our findings showed that after Mn mono-doping, the CsPbCl(3) lattice contracted and the bonding strength increased, resulting in a more...

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Autores principales: Jiang, Hao, Zhao, Yiting, Liu, Fangchao, Yan, Yongqi, Ma, Yinuo, Bao, Hexin, Wu, Zhongchen, Cong, Wei-Yan, Lu, Ying-Bo
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2023
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10456559/
https://www.ncbi.nlm.nih.gov/pubmed/37629836
http://dx.doi.org/10.3390/ma16165545
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author Jiang, Hao
Zhao, Yiting
Liu, Fangchao
Yan, Yongqi
Ma, Yinuo
Bao, Hexin
Wu, Zhongchen
Cong, Wei-Yan
Lu, Ying-Bo
author_facet Jiang, Hao
Zhao, Yiting
Liu, Fangchao
Yan, Yongqi
Ma, Yinuo
Bao, Hexin
Wu, Zhongchen
Cong, Wei-Yan
Lu, Ying-Bo
author_sort Jiang, Hao
collection PubMed
description To investigate the effect of Mn and other metal dopants on the photoelectronic performance of CsPbCl(3) perovskites, we conducted a series of theoretical analyses. Our findings showed that after Mn mono-doping, the CsPbCl(3) lattice contracted and the bonding strength increased, resulting in a more compact structure of the metal octahedral cage. The relaxation of the metal octahedral cage, along with the Jahn–Teller effect, results in a decrease in lattice strain between the octahedra and a reduction in the energy of the entire lattice due to the deformation of the metal octahedron. These three factors work together to reduce intrinsic defects and enhance the stability and electronic properties of CsPbCl(3) perovskites. The solubility of the Mn dopant is significantly increased when co-doped with Ni, Fe, and Co dopants, as it compensates for the lattice strain induced by Mn. Doping CsPbCl(3) perovskites reduces the band gap due to the decreased contributions of 3d orbitals from the dopants. Our analyses have revealed that strengthening the CsPbCl(3) lattice and reducing intrinsic defects can result in improved stability and PL properties. Moreover, increasing Mn solubility and decreasing the bandgap can enhance the PLQY of orange luminescence in CsPbCl(3) perovskites. These findings offer valuable insights for the development of effective strategies to enhance the photoelectronic properties of these materials.
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spelling pubmed-104565592023-08-26 Mono- and Co-Doped Mn-Doped CsPbCl(3) Perovskites with Enhanced Doping Efficiency and Photoluminescent Performance Jiang, Hao Zhao, Yiting Liu, Fangchao Yan, Yongqi Ma, Yinuo Bao, Hexin Wu, Zhongchen Cong, Wei-Yan Lu, Ying-Bo Materials (Basel) Article To investigate the effect of Mn and other metal dopants on the photoelectronic performance of CsPbCl(3) perovskites, we conducted a series of theoretical analyses. Our findings showed that after Mn mono-doping, the CsPbCl(3) lattice contracted and the bonding strength increased, resulting in a more compact structure of the metal octahedral cage. The relaxation of the metal octahedral cage, along with the Jahn–Teller effect, results in a decrease in lattice strain between the octahedra and a reduction in the energy of the entire lattice due to the deformation of the metal octahedron. These three factors work together to reduce intrinsic defects and enhance the stability and electronic properties of CsPbCl(3) perovskites. The solubility of the Mn dopant is significantly increased when co-doped with Ni, Fe, and Co dopants, as it compensates for the lattice strain induced by Mn. Doping CsPbCl(3) perovskites reduces the band gap due to the decreased contributions of 3d orbitals from the dopants. Our analyses have revealed that strengthening the CsPbCl(3) lattice and reducing intrinsic defects can result in improved stability and PL properties. Moreover, increasing Mn solubility and decreasing the bandgap can enhance the PLQY of orange luminescence in CsPbCl(3) perovskites. These findings offer valuable insights for the development of effective strategies to enhance the photoelectronic properties of these materials. MDPI 2023-08-09 /pmc/articles/PMC10456559/ /pubmed/37629836 http://dx.doi.org/10.3390/ma16165545 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
Jiang, Hao
Zhao, Yiting
Liu, Fangchao
Yan, Yongqi
Ma, Yinuo
Bao, Hexin
Wu, Zhongchen
Cong, Wei-Yan
Lu, Ying-Bo
Mono- and Co-Doped Mn-Doped CsPbCl(3) Perovskites with Enhanced Doping Efficiency and Photoluminescent Performance
title Mono- and Co-Doped Mn-Doped CsPbCl(3) Perovskites with Enhanced Doping Efficiency and Photoluminescent Performance
title_full Mono- and Co-Doped Mn-Doped CsPbCl(3) Perovskites with Enhanced Doping Efficiency and Photoluminescent Performance
title_fullStr Mono- and Co-Doped Mn-Doped CsPbCl(3) Perovskites with Enhanced Doping Efficiency and Photoluminescent Performance
title_full_unstemmed Mono- and Co-Doped Mn-Doped CsPbCl(3) Perovskites with Enhanced Doping Efficiency and Photoluminescent Performance
title_short Mono- and Co-Doped Mn-Doped CsPbCl(3) Perovskites with Enhanced Doping Efficiency and Photoluminescent Performance
title_sort mono- and co-doped mn-doped cspbcl(3) perovskites with enhanced doping efficiency and photoluminescent performance
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10456559/
https://www.ncbi.nlm.nih.gov/pubmed/37629836
http://dx.doi.org/10.3390/ma16165545
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