论文标题
用平衡分子动力学模拟计算的热运输的非本地线性响应函数
Non-local linear-response functions for thermal transport computed with equilibrium molecular-dynamics simulation
论文作者
论文摘要
我们建立了一种计算线性响应函数以阐明热浪和非本地热传输的方法。该理论能够描述系统对空间和时间不均匀的外部热源的响应。使用标准Lennard-Jones电位建模的AR晶体的平衡分子动力学模拟来计算响应函数。结果表明,对于低温和短长尺度,运输可以部分甚至完全弹道,其响应主要受晶格波的组速度的限制。相比之下,在较长的长度尺度和较高的温度下,响应函数更与Fourier定律的扩散传输特征相对应。还显示了如何在部分焊接方向上确定有效的热导率。结果表明,当系统尺寸小于晶格波的平均无路径时,观察到的有效热导率的已知降低。最后,我们展示了如何使用相关响应函数的确定来对晶体的加热进行建模,而无需其他原子尺度模拟。计算结果与傅立叶定律的预测之间的差异代表了波浪状的,部分焊接的运输。
We establish an approach to compute linear-response functions to elucidate heat waves and non-local thermal transport. The theory is able to describe the response of a system to external heat sources that are nonuniform in space and time. The response functions are computed using equilibrium molecular-dynamics simulations of an Ar crystal modeled using the standard Lennard-Jones potential. It is shown that for low temperatures and short length scales, transport can be partially or even completely ballistic, with the response primarily limited by the group velocity of lattice waves. By contrast, at longer length scales and higher temperatures, the response functions correspond more closely to diffusive transport characteristic of Fourier's law. It is also shown how the effective thermal conductivity can be determined in a partially-ballistic regime. The results demonstrate the known reduction in the effective thermal conductivity observed when system dimensions are smaller than the mean-free path for lattice waves. Finally, we show how determination of the relevant response functions can be used to model heating of a crystal without requiring additional atomic-scale simulations. Differences between computed results and predictions from Fourier's law represent wave-like, partially-ballistic transport.