用蒙特卡罗方法研究石墨烯导热性中的各向异性三声子相互作用

IF 2.5 4区 工程技术 Q3 CHEMISTRY, PHYSICAL
Shixian Liu, Fei Yin, Vladimir I. Khvesyuk
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引用次数: 0

摘要

本研究介绍了一种计算石墨烯导热系数的新方法,该方法使用蒙特卡罗方法来评估各向异性三声子相互作用。声子色散关系是使用力常数模型推导的,该模型包含了五阶最近邻相互作用,而声子态密度(DOS)是通过广义的Gilat-Raubenheimer方法计算的。建立了低温比热容标度指数的定量关系,强调了石墨烯独特的二维特性。为了解决各向异性效应,蒙特卡罗方法有效地识别了遵循能量和动量守恒定律的三声子组合。这些发现强调了各向异性声子相互作用在石墨烯导热性中的关键作用。通过迭代方法获得的导热系数值与先前的三声子计算结果非常吻合,从而验证了模型。然而,与实验数据的差异表明,结合高阶声子过程,如四声子散射,可能会进一步提高预测的准确性。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Investigating Anisotropic Three-Phonon Interactions in Graphene’s Thermal Conductivity Using Monte Carlo Method

This study introduces a novel method for calculating the thermal conductivity of graphene using a Monte Carlo approach to evaluate anisotropic three-phonon interactions. The phonon dispersion relation is derived using a force constant model that incorporates up to fifth-order nearest neighbor interactions, while the phonon density of states (DOS) is computed via a generalized Gilat–Raubenheimer method. A quantitative relationship for the scaling exponent of the specific heat capacity at low temperatures is established, emphasizing the unique two-dimensional characteristics of graphene. To address anisotropic effects, the Monte Carlo approach efficiently identifies three-phonon combinations that adhere to the conservation laws of energy and momentum. The findings highlight the pivotal role of anisotropic phonon interactions in graphene’s thermal conductivity. The thermal conductivity values obtained through the iterative method exhibit strong agreement with previous three-phonon calculations, thereby validating the model. Nevertheless, discrepancies with experimental data suggest that incorporating higher-order phonon processes, such as four-phonon scattering, may further improve predictive accuracy.

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来源期刊
CiteScore
4.10
自引率
9.10%
发文量
179
审稿时长
5 months
期刊介绍: International Journal of Thermophysics serves as an international medium for the publication of papers in thermophysics, assisting both generators and users of thermophysical properties data. This distinguished journal publishes both experimental and theoretical papers on thermophysical properties of matter in the liquid, gaseous, and solid states (including soft matter, biofluids, and nano- and bio-materials), on instrumentation and techniques leading to their measurement, and on computer studies of model and related systems. Studies in all ranges of temperature, pressure, wavelength, and other relevant variables are included.
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