Anisotropic thermal conductivity in two-dimensional van der Waals crystals

M. Jang, Swati Singh, Joonki Suh
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Abstract

Understanding thermal energy transport of crystalline materials, often highly dependent on their crystalline directions, is crucial for energy harvesting and thermal management applications. In this sense, anisotropy in thermal conductivity (κ), which is the unique characteristic of two-dimensional (2D) materials involving graphene and transition metal dichalcogenides (TMDs), has been attracting tremendous attention in terms of fundamental science and application-driven technology aspects. This distinctive heat transport behavior of 2D van der Waals (vdW) materials generally originates from their intrinsic crystal structures and associated lattice vibrations. Here, we thoroughly review and summarize the anisotropic thermal conductivity in 2D vdW crystals in two different categories: 1) in-plane vs. out-of-plane and 2) between two different in-plane directions. In addition, we introduce a range of thermal conductivity measurement techniques that can be employed for 2D vdW materials provided with their working principles, advantages, and limitations. Beyond their intrinsic anisotropic ratio, we conclude with perspectives on the extrinsic modulations of thermal conductivities, thereby maximizing it toward effective thermal management.
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二维范德华晶体的各向异性热导率
了解晶体材料的热能传输,通常高度依赖于它们的晶体方向,对于能量收集和热管理应用至关重要。从这个意义上说,导热系数(κ)的各向异性是石墨烯和过渡金属二硫族化合物(TMDs)二维(2D)材料的独特特性,在基础科学和应用驱动技术方面引起了极大的关注。二维范德华(vdW)材料的这种独特的热传递行为通常源于其固有的晶体结构和相关的晶格振动。本文对二维vdW晶体的各向异性热导率进行了全面的回顾和总结,分为两大类:1)面内与面外,2)两个不同的面内方向。此外,我们还介绍了一系列可用于二维vdW材料的导热系数测量技术,并提供了它们的工作原理、优点和局限性。除了它们的固有各向异性比之外,我们总结了热导率的外在调制的观点,从而最大限度地提高了有效的热管理。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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