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Atomic‐Scale Visualization and Quantification of Configurational Entropy in Relation to Thermal Conductivity: A Proof‐of‐Principle Study in t‐GeSb(2)Te(4)

It remains a daunting task to quantify the configurational entropy of a material from atom‐revolved electron microscopy images and correlate the results with the material's lattice thermal conductivity, which strides across statics, dynamics, and thermal transport of crystal lattice over orders...

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Autores principales: Chen, Yongjin, Zhang, Bin, Zhang, Yongsheng, Wu, Hong, Peng, Kunling, Yang, Hengquan, Zhang, Qing, Liu, Xiaopeng, Chai, Yisheng, Lu, Xu, Wang, Guoyu, Zhang, Ze, He, Jian, Han, Xiaodong, Zhou, Xiaoyuan
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/PMC8061353/
https://www.ncbi.nlm.nih.gov/pubmed/33898166
http://dx.doi.org/10.1002/advs.202002051
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author Chen, Yongjin
Zhang, Bin
Zhang, Yongsheng
Wu, Hong
Peng, Kunling
Yang, Hengquan
Zhang, Qing
Liu, Xiaopeng
Chai, Yisheng
Lu, Xu
Wang, Guoyu
Zhang, Ze
He, Jian
Han, Xiaodong
Zhou, Xiaoyuan
author_facet Chen, Yongjin
Zhang, Bin
Zhang, Yongsheng
Wu, Hong
Peng, Kunling
Yang, Hengquan
Zhang, Qing
Liu, Xiaopeng
Chai, Yisheng
Lu, Xu
Wang, Guoyu
Zhang, Ze
He, Jian
Han, Xiaodong
Zhou, Xiaoyuan
author_sort Chen, Yongjin
collection PubMed
description It remains a daunting task to quantify the configurational entropy of a material from atom‐revolved electron microscopy images and correlate the results with the material's lattice thermal conductivity, which strides across statics, dynamics, and thermal transport of crystal lattice over orders of magnitudes in length and time. Here, a proof‐of‐principle study of atomic‐scale visualization and quantification of configurational entropy in relation to thermal conductivity in single crystalline trigonal GeSb(2)Te(4) (aka t‐GeSb(2)Te(4)) with native atomic site disorder is reported. A concerted effort of large t‐GeSb(2)Te(4) single crystal growth, in‐lab developed analysis procedure of atomic column intensity, the visualization and quantification of configurational entropy including corresponding modulation, and thermal transport measurements enable an entropic “bottom‐up” perspective to the lattice thermal conductivity of t‐GeSb(2)Te(4). It is uncovered that the configurational entropy increases phonon scattering and reduces phonon mean free path as well as promotes anharmonicity, thereby giving rise to low lattice thermal conductivity and promising thermoelectric performance. The current study sheds lights on an atomic scale bottom‐up configurational entropy design in diverse regimes of structural and functional materials research and applications.
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spelling pubmed-80613532021-04-23 Atomic‐Scale Visualization and Quantification of Configurational Entropy in Relation to Thermal Conductivity: A Proof‐of‐Principle Study in t‐GeSb(2)Te(4) Chen, Yongjin Zhang, Bin Zhang, Yongsheng Wu, Hong Peng, Kunling Yang, Hengquan Zhang, Qing Liu, Xiaopeng Chai, Yisheng Lu, Xu Wang, Guoyu Zhang, Ze He, Jian Han, Xiaodong Zhou, Xiaoyuan Adv Sci (Weinh) Communications It remains a daunting task to quantify the configurational entropy of a material from atom‐revolved electron microscopy images and correlate the results with the material's lattice thermal conductivity, which strides across statics, dynamics, and thermal transport of crystal lattice over orders of magnitudes in length and time. Here, a proof‐of‐principle study of atomic‐scale visualization and quantification of configurational entropy in relation to thermal conductivity in single crystalline trigonal GeSb(2)Te(4) (aka t‐GeSb(2)Te(4)) with native atomic site disorder is reported. A concerted effort of large t‐GeSb(2)Te(4) single crystal growth, in‐lab developed analysis procedure of atomic column intensity, the visualization and quantification of configurational entropy including corresponding modulation, and thermal transport measurements enable an entropic “bottom‐up” perspective to the lattice thermal conductivity of t‐GeSb(2)Te(4). It is uncovered that the configurational entropy increases phonon scattering and reduces phonon mean free path as well as promotes anharmonicity, thereby giving rise to low lattice thermal conductivity and promising thermoelectric performance. The current study sheds lights on an atomic scale bottom‐up configurational entropy design in diverse regimes of structural and functional materials research and applications. John Wiley and Sons Inc. 2021-02-08 /pmc/articles/PMC8061353/ /pubmed/33898166 http://dx.doi.org/10.1002/advs.202002051 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 Communications
Chen, Yongjin
Zhang, Bin
Zhang, Yongsheng
Wu, Hong
Peng, Kunling
Yang, Hengquan
Zhang, Qing
Liu, Xiaopeng
Chai, Yisheng
Lu, Xu
Wang, Guoyu
Zhang, Ze
He, Jian
Han, Xiaodong
Zhou, Xiaoyuan
Atomic‐Scale Visualization and Quantification of Configurational Entropy in Relation to Thermal Conductivity: A Proof‐of‐Principle Study in t‐GeSb(2)Te(4)
title Atomic‐Scale Visualization and Quantification of Configurational Entropy in Relation to Thermal Conductivity: A Proof‐of‐Principle Study in t‐GeSb(2)Te(4)
title_full Atomic‐Scale Visualization and Quantification of Configurational Entropy in Relation to Thermal Conductivity: A Proof‐of‐Principle Study in t‐GeSb(2)Te(4)
title_fullStr Atomic‐Scale Visualization and Quantification of Configurational Entropy in Relation to Thermal Conductivity: A Proof‐of‐Principle Study in t‐GeSb(2)Te(4)
title_full_unstemmed Atomic‐Scale Visualization and Quantification of Configurational Entropy in Relation to Thermal Conductivity: A Proof‐of‐Principle Study in t‐GeSb(2)Te(4)
title_short Atomic‐Scale Visualization and Quantification of Configurational Entropy in Relation to Thermal Conductivity: A Proof‐of‐Principle Study in t‐GeSb(2)Te(4)
title_sort atomic‐scale visualization and quantification of configurational entropy in relation to thermal conductivity: a proof‐of‐principle study in t‐gesb(2)te(4)
topic Communications
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8061353/
https://www.ncbi.nlm.nih.gov/pubmed/33898166
http://dx.doi.org/10.1002/advs.202002051
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