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Regulating Exciton–Phonon Coupling to Achieve a Near‐Unity Photoluminescence Quantum Yield in One‐Dimensional Hybrid Metal Halides

Low‐dimensional hybrid metal halides are emerging as a highly promising class of single‐component white‐emitting materials for their unique broadband emission from self‐trapped excitons (STEs). Despite substantial progress in the development of these metal halides, many challenges remain to be addre...

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Autores principales: Luo, Hui, Guo, Songhao, Zhang, Yubo, Bu, Kejun, Lin, Haoran, Wang, Yingqi, Yin, Yanfeng, Zhang, Dongzhou, Jin, Shengye, Zhang, Wenqing, Yang, Wenge, Ma, Biwu, Lü, Xujie
Formato: Online Artículo Texto
Lenguaje:English
Publicado: John Wiley and Sons Inc. 2021
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8292847/
https://www.ncbi.nlm.nih.gov/pubmed/34021734
http://dx.doi.org/10.1002/advs.202100786
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author Luo, Hui
Guo, Songhao
Zhang, Yubo
Bu, Kejun
Lin, Haoran
Wang, Yingqi
Yin, Yanfeng
Zhang, Dongzhou
Jin, Shengye
Zhang, Wenqing
Yang, Wenge
Ma, Biwu
Lü, Xujie
author_facet Luo, Hui
Guo, Songhao
Zhang, Yubo
Bu, Kejun
Lin, Haoran
Wang, Yingqi
Yin, Yanfeng
Zhang, Dongzhou
Jin, Shengye
Zhang, Wenqing
Yang, Wenge
Ma, Biwu
Lü, Xujie
author_sort Luo, Hui
collection PubMed
description Low‐dimensional hybrid metal halides are emerging as a highly promising class of single‐component white‐emitting materials for their unique broadband emission from self‐trapped excitons (STEs). Despite substantial progress in the development of these metal halides, many challenges remain to be addressed to obtain a better fundamental understanding of the structure–property relationship and realize the full potentials of this class of materials. Here, via pressure regulation, a near 100% photoluminescence quantum yield (PLQY) of broadband emission is achieved in a corrugated 1D hybrid metal halide C(5)N(2)H(16)Pb(2)Br(6), which possesses a highly distorted structure with an initial PLQY of 10%. Compression reduces the overlap between STE states and ground state, leading to a suppressed phonon‐assisted non‐radiative decay. The PL evolution is systematically demonstrated to be controlled by the pressure‐regulated exciton–phonon coupling which can be quantified using Huang–Rhys factor S. Detailed studies of the S‐PLQY relation for a series of 1D hybrid metal halides (C(5)N(2)H(16)Pb(2)Br(6), C(4)N(2)H(14)PbBr(4), C(6)N(2)H(16)PbBr(4), and (C(6)N(2)H(16))(3)Pb(2)Br(10)) reveal a quantitative structure–property relationship that regulating S factor toward 28 leads to the maximum emission.
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spelling pubmed-82928472021-07-22 Regulating Exciton–Phonon Coupling to Achieve a Near‐Unity Photoluminescence Quantum Yield in One‐Dimensional Hybrid Metal Halides Luo, Hui Guo, Songhao Zhang, Yubo Bu, Kejun Lin, Haoran Wang, Yingqi Yin, Yanfeng Zhang, Dongzhou Jin, Shengye Zhang, Wenqing Yang, Wenge Ma, Biwu Lü, Xujie Adv Sci (Weinh) Research Articles Low‐dimensional hybrid metal halides are emerging as a highly promising class of single‐component white‐emitting materials for their unique broadband emission from self‐trapped excitons (STEs). Despite substantial progress in the development of these metal halides, many challenges remain to be addressed to obtain a better fundamental understanding of the structure–property relationship and realize the full potentials of this class of materials. Here, via pressure regulation, a near 100% photoluminescence quantum yield (PLQY) of broadband emission is achieved in a corrugated 1D hybrid metal halide C(5)N(2)H(16)Pb(2)Br(6), which possesses a highly distorted structure with an initial PLQY of 10%. Compression reduces the overlap between STE states and ground state, leading to a suppressed phonon‐assisted non‐radiative decay. The PL evolution is systematically demonstrated to be controlled by the pressure‐regulated exciton–phonon coupling which can be quantified using Huang–Rhys factor S. Detailed studies of the S‐PLQY relation for a series of 1D hybrid metal halides (C(5)N(2)H(16)Pb(2)Br(6), C(4)N(2)H(14)PbBr(4), C(6)N(2)H(16)PbBr(4), and (C(6)N(2)H(16))(3)Pb(2)Br(10)) reveal a quantitative structure–property relationship that regulating S factor toward 28 leads to the maximum emission. John Wiley and Sons Inc. 2021-05-22 /pmc/articles/PMC8292847/ /pubmed/34021734 http://dx.doi.org/10.1002/advs.202100786 Text en © 2021 The Authors. Advanced Science published by Wiley‐VCH GmbH https://creativecommons.org/licenses/by/4.0/This is an open access article under the terms of the http://creativecommons.org/licenses/by/4.0/ (https://creativecommons.org/licenses/by/4.0/) License, which permits use, distribution and reproduction in any medium, provided the original work is properly cited.
spellingShingle Research Articles
Luo, Hui
Guo, Songhao
Zhang, Yubo
Bu, Kejun
Lin, Haoran
Wang, Yingqi
Yin, Yanfeng
Zhang, Dongzhou
Jin, Shengye
Zhang, Wenqing
Yang, Wenge
Ma, Biwu
Lü, Xujie
Regulating Exciton–Phonon Coupling to Achieve a Near‐Unity Photoluminescence Quantum Yield in One‐Dimensional Hybrid Metal Halides
title Regulating Exciton–Phonon Coupling to Achieve a Near‐Unity Photoluminescence Quantum Yield in One‐Dimensional Hybrid Metal Halides
title_full Regulating Exciton–Phonon Coupling to Achieve a Near‐Unity Photoluminescence Quantum Yield in One‐Dimensional Hybrid Metal Halides
title_fullStr Regulating Exciton–Phonon Coupling to Achieve a Near‐Unity Photoluminescence Quantum Yield in One‐Dimensional Hybrid Metal Halides
title_full_unstemmed Regulating Exciton–Phonon Coupling to Achieve a Near‐Unity Photoluminescence Quantum Yield in One‐Dimensional Hybrid Metal Halides
title_short Regulating Exciton–Phonon Coupling to Achieve a Near‐Unity Photoluminescence Quantum Yield in One‐Dimensional Hybrid Metal Halides
title_sort regulating exciton–phonon coupling to achieve a near‐unity photoluminescence quantum yield in one‐dimensional hybrid metal halides
topic Research Articles
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8292847/
https://www.ncbi.nlm.nih.gov/pubmed/34021734
http://dx.doi.org/10.1002/advs.202100786
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