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光学声子与声学声子耦合对二维MgI热导率的影响。

The effect of optical-acoustic phonon coupling on the thermal conductivity of 2D MgI.

作者信息

Zhang Chunwei, Jiang Xiaobo, Wang Xiaodan, Cao Xingan, Zhou LinZhen, Xing Yuheng, Xu Ning

机构信息

School of Mechanical Engineering, Yancheng Institute of Technology, Jiangsu, 224051, P. R. China.

Department of Physics, Yancheng Institute of Technology, Jiangsu, 224051, P. R. China.

出版信息

Phys Chem Chem Phys. 2024 Aug 28;26(34):22509-22517. doi: 10.1039/d4cp02462a.

Abstract

2D MgI has a large phonon band gap and strong coupling of optical and acoustic phonons, and it is difficult to accurately predict thermal conductivity by considering only three-phonon scattering. Thus, in this study, the effect of four-phonon scattering on the thermal conductivity of a 2D MgI lattice was investigated using first-principles calculations combined with Boltzmann transport theory. The results show that with increasing temperature, four-phonon scattering induces an increase in the scattering of phonons at the optical and acoustic phonon coupling (2 THz), as well as in the vicinity of the optical phonon branch (4.5 THz), which leads to the enhancement of the anharmonicity of phonon transport and results in a decrease in the thermal conductivity of the 2D material. At 700 K, the thermal conductivity of MgI decreases by over half, from 0.47 W m K to 0.23 W m K, when considering both three- and four-phonon scattering, compared to considering only three-phonon scattering. This study confirms the need to consider the role of four-phonon scattering to enhance optical and acoustic phonon coupling to accurately predict the thermal conductivity of 2D materials with larger phonon band gaps.

摘要

二维碘化镁具有较大的声子带隙以及光学声子与声学声子的强耦合,仅考虑三声子散射很难准确预测其热导率。因此,在本研究中,结合玻尔兹曼输运理论,采用第一性原理计算研究了四声子散射对二维碘化镁晶格热导率的影响。结果表明,随着温度升高,四声子散射导致光学声子与声学声子耦合处(2太赫兹)以及光学声子分支附近(4.5太赫兹)的声子散射增加,这导致声子输运非谐性增强,二维材料的热导率降低。在700开尔文时,与仅考虑三声子散射相比,同时考虑三声子和四声子散射时,碘化镁的热导率从0.47瓦每米开尔文降至0.23瓦每米开尔文,降幅超过一半。本研究证实,对于具有较大声子带隙的二维材料,需要考虑四声子散射在增强光学声子与声学声子耦合方面的作用,以准确预测其热导率。

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