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Enhanced visible light absorption in layered Cs(3)Bi(2)Br(9) through mixed-valence Sn(ii)/Sn(iv) doping

Lead-free halides with perovskite-related structures, such as the vacancy-ordered perovskite Cs(3)Bi(2)Br(9), are of interest for photovoltaic and optoelectronic applications. We find that addition of SnBr(2) to the solution-phase synthesis of Cs(3)Bi(2)Br(9) leads to substitution of up to 7% of the...

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Autores principales: Krajewska, Chantalle J., Kavanagh, Seán R., Zhang, Lina, Kubicki, Dominik J., Dey, Krishanu, Gałkowski, Krzysztof, Grey, Clare P., Stranks, Samuel D., Walsh, Aron, Scanlon, David O., Palgrave, Robert G.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: The Royal Society of Chemistry 2021
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8597838/
https://www.ncbi.nlm.nih.gov/pubmed/34820084
http://dx.doi.org/10.1039/d1sc03775g
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author Krajewska, Chantalle J.
Kavanagh, Seán R.
Zhang, Lina
Kubicki, Dominik J.
Dey, Krishanu
Gałkowski, Krzysztof
Grey, Clare P.
Stranks, Samuel D.
Walsh, Aron
Scanlon, David O.
Palgrave, Robert G.
author_facet Krajewska, Chantalle J.
Kavanagh, Seán R.
Zhang, Lina
Kubicki, Dominik J.
Dey, Krishanu
Gałkowski, Krzysztof
Grey, Clare P.
Stranks, Samuel D.
Walsh, Aron
Scanlon, David O.
Palgrave, Robert G.
author_sort Krajewska, Chantalle J.
collection PubMed
description Lead-free halides with perovskite-related structures, such as the vacancy-ordered perovskite Cs(3)Bi(2)Br(9), are of interest for photovoltaic and optoelectronic applications. We find that addition of SnBr(2) to the solution-phase synthesis of Cs(3)Bi(2)Br(9) leads to substitution of up to 7% of the Bi(iii) ions by equal quantities of Sn(ii) and Sn(iv). The nature of the substitutional defects was studied by X-ray diffraction, (133)Cs and (119)Sn solid state NMR, X-ray photoelectron spectroscopy and density functional theory calculations. The resulting mixed-valence compounds show intense visible and near infrared absorption due to intervalence charge transfer, as well as electronic transitions to and from localised Sn-based states within the band gap. Sn(ii) and Sn(iv) defects preferentially occupy neighbouring B-cation sites, forming a double-substitution complex. Unusually for a Sn(ii) compound, the material shows minimal changes in optical and structural properties after 12 months storage in air. Our calculations suggest the stabilisation of Sn(ii) within the double substitution complex contributes to this unusual stability. These results expand upon research on inorganic mixed-valent halides to a new, layered structure, and offer insights into the tuning, doping mechanisms, and structure–property relationships of lead-free vacancy-ordered perovskite structures.
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spelling pubmed-85978382021-11-23 Enhanced visible light absorption in layered Cs(3)Bi(2)Br(9) through mixed-valence Sn(ii)/Sn(iv) doping Krajewska, Chantalle J. Kavanagh, Seán R. Zhang, Lina Kubicki, Dominik J. Dey, Krishanu Gałkowski, Krzysztof Grey, Clare P. Stranks, Samuel D. Walsh, Aron Scanlon, David O. Palgrave, Robert G. Chem Sci Chemistry Lead-free halides with perovskite-related structures, such as the vacancy-ordered perovskite Cs(3)Bi(2)Br(9), are of interest for photovoltaic and optoelectronic applications. We find that addition of SnBr(2) to the solution-phase synthesis of Cs(3)Bi(2)Br(9) leads to substitution of up to 7% of the Bi(iii) ions by equal quantities of Sn(ii) and Sn(iv). The nature of the substitutional defects was studied by X-ray diffraction, (133)Cs and (119)Sn solid state NMR, X-ray photoelectron spectroscopy and density functional theory calculations. The resulting mixed-valence compounds show intense visible and near infrared absorption due to intervalence charge transfer, as well as electronic transitions to and from localised Sn-based states within the band gap. Sn(ii) and Sn(iv) defects preferentially occupy neighbouring B-cation sites, forming a double-substitution complex. Unusually for a Sn(ii) compound, the material shows minimal changes in optical and structural properties after 12 months storage in air. Our calculations suggest the stabilisation of Sn(ii) within the double substitution complex contributes to this unusual stability. These results expand upon research on inorganic mixed-valent halides to a new, layered structure, and offer insights into the tuning, doping mechanisms, and structure–property relationships of lead-free vacancy-ordered perovskite structures. The Royal Society of Chemistry 2021-10-05 /pmc/articles/PMC8597838/ /pubmed/34820084 http://dx.doi.org/10.1039/d1sc03775g Text en This journal is © The Royal Society of Chemistry https://creativecommons.org/licenses/by/3.0/
spellingShingle Chemistry
Krajewska, Chantalle J.
Kavanagh, Seán R.
Zhang, Lina
Kubicki, Dominik J.
Dey, Krishanu
Gałkowski, Krzysztof
Grey, Clare P.
Stranks, Samuel D.
Walsh, Aron
Scanlon, David O.
Palgrave, Robert G.
Enhanced visible light absorption in layered Cs(3)Bi(2)Br(9) through mixed-valence Sn(ii)/Sn(iv) doping
title Enhanced visible light absorption in layered Cs(3)Bi(2)Br(9) through mixed-valence Sn(ii)/Sn(iv) doping
title_full Enhanced visible light absorption in layered Cs(3)Bi(2)Br(9) through mixed-valence Sn(ii)/Sn(iv) doping
title_fullStr Enhanced visible light absorption in layered Cs(3)Bi(2)Br(9) through mixed-valence Sn(ii)/Sn(iv) doping
title_full_unstemmed Enhanced visible light absorption in layered Cs(3)Bi(2)Br(9) through mixed-valence Sn(ii)/Sn(iv) doping
title_short Enhanced visible light absorption in layered Cs(3)Bi(2)Br(9) through mixed-valence Sn(ii)/Sn(iv) doping
title_sort enhanced visible light absorption in layered cs(3)bi(2)br(9) through mixed-valence sn(ii)/sn(iv) doping
topic Chemistry
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8597838/
https://www.ncbi.nlm.nih.gov/pubmed/34820084
http://dx.doi.org/10.1039/d1sc03775g
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