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研究非晶态材料中声子气体模型的有效性。

Examining the Validity of the Phonon Gas Model in Amorphous Materials.

机构信息

George W. Woodruff School of Mechanical Engineering, Georgia Institute of Technology, Atlanta, GA 30332, USA.

School of Materials Science and Engineering, Georgia Institute of Technology, Atlanta, GA, 30332, USA.

出版信息

Sci Rep. 2016 Dec 5;6:37675. doi: 10.1038/srep37675.

Abstract

The idea of treating phonon transport as equivalent to transport through a gas of particles is termed the phonon gas model (PGM), and it has been used almost ubiquitously to try and understand heat conduction in all solids. However, most of the modes in disordered materials do not propagate and thus may contribute to heat conduction in a fundamentally different way than is described by the PGM. From a practical perspective, the problem with trying to apply the PGM to amorphous materials is the fact that one cannot rigorously define the phonon velocities for non-propagating modes, since there is no periodicity. Here, we tested the validity of the PGM for amorphous materials by assuming the PGM is applicable, and then, using a combination of lattice dynamics, molecular dynamics (MD) and experimental thermal conductivity data, we back-calculated the phonon velocities for the vibrational modes. The results of this approach show that if the PGM was valid, a large number of the mid and high frequency modes would have to have either imaginary or extremely high velocities to reproduce the experimental thermal conductivity data. Furthermore, the results of MD based relaxation time calculations suggest that in amorphous materials there is little, if any, connection between relaxation times and thermal conductivity. This then strongly suggests that the PGM is inapplicable to amorphous solids.

摘要

将声子输运视为等效于粒子气体传输的想法被称为声子气体模型(PGM),它几乎被普遍用于尝试理解所有固体中的热传导。然而,无序材料中的大多数模式不会传播,因此可能以与 PGM 所描述的根本不同的方式对热传导做出贡献。从实际的角度来看,尝试将 PGM 应用于非晶材料的问题在于,由于没有周期性,因此无法严格定义非传播模式的声子速度。在这里,我们通过假设 PGM 适用来测试 PGM 对于非晶材料的有效性,然后使用晶格动力学、分子动力学(MD)和实验热导率数据的组合,反推振动模式的声子速度。这种方法的结果表明,如果 PGM 是有效的,那么为了重现实验热导率数据,大量的中频和高频模式必须具有虚数或极高的速度。此外,基于 MD 的弛豫时间计算的结果表明,在非晶材料中,弛豫时间与热导率之间几乎没有(如果有的话)联系。这强烈表明 PGM 不适用于非晶固体。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/d92b/5137137/d0d9065ced12/srep37675-f1.jpg

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