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考虑非谐性、不对称性和量子效应的非平衡分子动力学模拟中的界面热导谱。

The interfacial thermal conductance spectrum in nonequilibrium molecular dynamics simulations considering anharmonicity, asymmetry and quantum effects.

作者信息

Xu Yixin, Yang Lina, Zhou Yanguang

机构信息

Department of Mechanical and Aerospace Engineering, The Hong Kong University of Science and Technology, Clear Water Bay, Kowloon, Hong Kong SAR.

School of Aerospace Engineering, Beijing Institute of Technology, Beijing, 100081, China.

出版信息

Phys Chem Chem Phys. 2022 Oct 12;24(39):24503-24513. doi: 10.1039/d2cp03081k.

Abstract

Interfacial thermal transport is critical for many thermal-related applications such as heat dissipation in electronics. While the total interfacial thermal conductance (ITC) can be easily measured or calculated, the ITC spectral mapping has been investigated only recently and is not fully understood. By combining nonequilibrium molecular dynamics simulations and atomistic Green's function method, we systematically investigate the ITC spectrum across an ideal interface, , the argon/heavy argon interface. Our results show that the ITC increases gradually with temperature as more phonons and anharmonic scattering channels are activated, , the vibrations with frequencies larger than 1 THz can contribute 5% (15%) to the total ITC at 2 K (40 K) through anharmonic phonon scattering channels. We further find that the ITC spectrum from the left interfacial Hamiltonian is quite different from that of the right interfacial Hamiltonian, which stems from the asymmetry of anharmonic phonon scatterings caused by the dissimilar vibrational properties of the two interfacial contacts. While all the phonons are involved in the anharmonic scatterings for the heavy argon interfacial Hamiltonian, the phonons involved in the anharmonic phonon scatterings from the argon interfacial Hamiltonians are mainly the vibrations with frequency smaller than 1 THz (, the cut-off frequency of heavy argon). Finally, we found that the quantum effect is important for the ITC spectrum at low temperatures, , below 30 K in our systems. Our findings are also applicable to other interfaces, , Si/Ge interfaces. Our study here systematically investigates the influence of anharmonicity, asymmetry, and quantum effects on the ITC spectrum, which is critical for designing and optimizing interfaces for better performance.

摘要

界面热输运对于许多与热相关的应用至关重要,例如电子设备中的散热。虽然总界面热导(ITC)可以很容易地测量或计算,但ITC光谱映射直到最近才被研究,并且尚未完全理解。通过结合非平衡分子动力学模拟和原子格林函数方法,我们系统地研究了跨越理想界面(氩/重氩界面)的ITC光谱。我们的结果表明,随着更多声子和非谐散射通道被激活,ITC随温度逐渐增加,例如,频率大于1 THz的振动在2 K(40 K)时可通过非谐声子散射通道对总ITC贡献5%(15%)。我们进一步发现,来自左界面哈密顿量的ITC光谱与右界面哈密顿量的光谱有很大不同,这源于两个界面接触的不同振动特性导致的非谐声子散射的不对称性。对于重氩界面哈密顿量,所有声子都参与非谐散射,而来自氩界面哈密顿量的非谐声子散射中涉及的声子主要是频率小于1 THz(重氩的截止频率)的振动。最后,我们发现量子效应在低温下(在我们的系统中低于30 K)对ITC光谱很重要。我们的发现也适用于其他界面,例如Si/Ge界面。我们这里的研究系统地研究了非谐性、不对称性和量子效应对ITC光谱的影响,这对于设计和优化界面以获得更好性能至关重要。

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