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Stretched three-dimensional white graphene with a tremendous lattice thermal conductivity increase rate

Despite the increasing interest in the physical properties of the newly synthesized three-dimensional (3D) nano-architectured graphene, there are still few studies on the thermal transport properties of this family of materials. In the present work, heat transport of 3D h-BN and its mechanical respo...

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Autores principales: Han, Yang, Liang, Yue, Liu, Xiaochuang, Jia, Shijie, Zhao, Chaoxiang, Yang, Longbin, Ding, Jiabao, Hong, Guo, Termentzidis, Konstantinos
Formato: Online Artículo Texto
Lenguaje:English
Publicado: The Royal Society of Chemistry 2022
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9376935/
https://www.ncbi.nlm.nih.gov/pubmed/36105992
http://dx.doi.org/10.1039/d2ra01869a
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author Han, Yang
Liang, Yue
Liu, Xiaochuang
Jia, Shijie
Zhao, Chaoxiang
Yang, Longbin
Ding, Jiabao
Hong, Guo
Termentzidis, Konstantinos
author_facet Han, Yang
Liang, Yue
Liu, Xiaochuang
Jia, Shijie
Zhao, Chaoxiang
Yang, Longbin
Ding, Jiabao
Hong, Guo
Termentzidis, Konstantinos
author_sort Han, Yang
collection PubMed
description Despite the increasing interest in the physical properties of the newly synthesized three-dimensional (3D) nano-architectured graphene, there are still few studies on the thermal transport properties of this family of materials. In the present work, heat transport of 3D h-BN and its mechanical response are systematically explored through first principles calculations. It is fascinating to find that the thermal conductivity of the 3D h-BN honeycomb structure could be significantly modulated by mechanical tension. Its lattice thermal conductivity perpendicular to the hole axis increases by 7.2 times at 6% critical strain, compared to only 0.67 times for that of the strained 3D graphene counterpart. The structure's thermal conductivity versus mechanical tension differs quantitatively and qualitatively from the monotonic downward trend of traditional bulk diamond or silicon under tension. This deviation from the classic behavior could be attributed to the modification of the phonon lifetimes, together with the competition between group velocities of low- and high-lying phonons under strain. Finally, the phonon vibrational modes contribution analysis indicates that the BN ribbon atoms contribute mainly at a lower frequency range. Our results provide important insights into potential employment of nano-architectured 3D white graphene for thermal management in relevant industrial applications.
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spelling pubmed-93769352022-09-13 Stretched three-dimensional white graphene with a tremendous lattice thermal conductivity increase rate Han, Yang Liang, Yue Liu, Xiaochuang Jia, Shijie Zhao, Chaoxiang Yang, Longbin Ding, Jiabao Hong, Guo Termentzidis, Konstantinos RSC Adv Chemistry Despite the increasing interest in the physical properties of the newly synthesized three-dimensional (3D) nano-architectured graphene, there are still few studies on the thermal transport properties of this family of materials. In the present work, heat transport of 3D h-BN and its mechanical response are systematically explored through first principles calculations. It is fascinating to find that the thermal conductivity of the 3D h-BN honeycomb structure could be significantly modulated by mechanical tension. Its lattice thermal conductivity perpendicular to the hole axis increases by 7.2 times at 6% critical strain, compared to only 0.67 times for that of the strained 3D graphene counterpart. The structure's thermal conductivity versus mechanical tension differs quantitatively and qualitatively from the monotonic downward trend of traditional bulk diamond or silicon under tension. This deviation from the classic behavior could be attributed to the modification of the phonon lifetimes, together with the competition between group velocities of low- and high-lying phonons under strain. Finally, the phonon vibrational modes contribution analysis indicates that the BN ribbon atoms contribute mainly at a lower frequency range. Our results provide important insights into potential employment of nano-architectured 3D white graphene for thermal management in relevant industrial applications. The Royal Society of Chemistry 2022-08-15 /pmc/articles/PMC9376935/ /pubmed/36105992 http://dx.doi.org/10.1039/d2ra01869a Text en This journal is © The Royal Society of Chemistry https://creativecommons.org/licenses/by-nc/3.0/
spellingShingle Chemistry
Han, Yang
Liang, Yue
Liu, Xiaochuang
Jia, Shijie
Zhao, Chaoxiang
Yang, Longbin
Ding, Jiabao
Hong, Guo
Termentzidis, Konstantinos
Stretched three-dimensional white graphene with a tremendous lattice thermal conductivity increase rate
title Stretched three-dimensional white graphene with a tremendous lattice thermal conductivity increase rate
title_full Stretched three-dimensional white graphene with a tremendous lattice thermal conductivity increase rate
title_fullStr Stretched three-dimensional white graphene with a tremendous lattice thermal conductivity increase rate
title_full_unstemmed Stretched three-dimensional white graphene with a tremendous lattice thermal conductivity increase rate
title_short Stretched three-dimensional white graphene with a tremendous lattice thermal conductivity increase rate
title_sort stretched three-dimensional white graphene with a tremendous lattice thermal conductivity increase rate
topic Chemistry
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9376935/
https://www.ncbi.nlm.nih.gov/pubmed/36105992
http://dx.doi.org/10.1039/d2ra01869a
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