Luo Yixiu, Yang Xiaolong, Feng Tianli, Wang Jingyang, Ruan Xiulin
School of Mechanical Engineering and the Birck Nanotechnology Center, Purdue University, West Lafayette, IN, 47907, USA.
Shenyang National Laboratory for Materials Science, Institute of Metal Research, Chinese Academy of Sciences, Shenyang, 110016, China.
Nat Commun. 2020 May 22;11(1):2554. doi: 10.1038/s41467-020-16371-w.
Many low-thermal-conductivity (κ) crystals show intriguing temperature (T) dependence of κ: κ ∝ T (crystal-like) at intermediate temperatures whereas weak T-dependence (glass-like) at high temperatures. It has been in debate whether thermal transport can still be described by phonons at the Ioffe-Regel limit. In this work, we propose that most phonons are still well defined for thermal transport, whereas they carry heat via dual channels: normal phonons described by the Boltzmann transport equation theory, and diffuson-like phonons described by the diffusion theory. Three physics-based criteria are incorporated into first-principles calculations to judge mode-by-mode between the two phonon channels. Case studies on LaZrO and TlVSe show that normal phonons dominate low temperatures while diffuson-like phonons dominate high temperatures. Our present dual-phonon theory enlightens the physics of hierarchical phonon transport as approaching the Ioffe-Regel limit and provides a numerical method that should be practically applicable to many materials with vibrational hierarchy.
许多低热导率(κ)晶体表现出有趣的κ对温度(T)的依赖性:在中间温度下κ∝T(类晶体),而在高温下T依赖性较弱(类玻璃)。在伊夫琴-雷格尔极限下,热输运是否仍能用声子来描述一直存在争议。在这项工作中,我们提出,大多数声子对于热输运仍然定义明确,而它们通过双渠道传热:由玻尔兹曼输运方程理论描述的常规声子,以及由扩散理论描述的类扩散声子。将三个基于物理的判据纳入第一性原理计算,以逐模式判断两个声子通道。对LaZrO和TlVSe的案例研究表明,常规声子在低温下占主导,而类扩散声子在高温下占主导。我们目前的双声子理论揭示了接近伊夫琴-雷格尔极限时分层声子输运的物理原理,并提供了一种数值方法,该方法应该可实际应用于许多具有振动分层的材料。