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本征有效电荷消除了单层GeC中晶格热导率的反常温度依赖性。

Born effective charge removed anomalous temperature dependence of lattice thermal conductivity in monolayer GeC.

作者信息

Guo San-Dong, Guo Xiao-Shu, Dong Jun

机构信息

School of Electronic Engineering, Xi'an University of Posts and Telecommunications, Xi'an 710121, People's Republic of China.

出版信息

J Phys Condens Matter. 2019 Mar 27;31(12):125701. doi: 10.1088/1361-648X/aafd58. Epub 2019 Jan 10.

Abstract

Due to potential applications in nano- and opto-electronics, two-dimensional (2D) materials have attracted tremendous interest. Their thermal transport properties are closely related to the performance of 2D materials-based devices. Here, the phonon transports of monolayer GeC with a perfect planar hexagonal honeycomb structure are investigated by solving the linearized phonon Boltzmann equation within the single-mode relaxation time approximation (RTA). Without inclusion of Born effective charges (Z ) and dielectric constants ([Formula: see text]), the lattice thermal conductivity ([Formula: see text]) decreases almost linearly above 350 K, deviating from the usual [Formula: see text] law. The underlying mechanism is because the contribution to [Formula: see text] from high-frequency optical phonon modes increases with increasing temperature, and the contribution exceeds one from acoustic branches at high temperature. These can be understood by huge phonon band gap caused by large difference in atom mass between Ge and C atoms, which produces important effects on scattering process involving high-frequency optical phonon. When considering Z and [Formula: see text], the phonon group velocities and phonon lifetimes of high-frequency optical phonon modes are obviously reduced with respect to ones without Z and [Formula: see text]. The reduced group velocities and phonon lifetimes give rise to small contribution to [Formula: see text] from high-frequency optical phonon modes, which produces the the traditional [Formula: see text] relation in monolayer GeC. Our works highlight the importance of Z and [Formula: see text] to investigate phonon transports of monolayer GeC, and motivate further theoretical or experimental efforts to investigate thermal transports of other 2D materials.

摘要

由于在纳米电子学和光电子学中的潜在应用,二维(2D)材料引起了极大的关注。它们的热输运性质与基于二维材料的器件性能密切相关。在此,通过在单模弛豫时间近似(RTA)内求解线性化的声子玻尔兹曼方程,研究了具有完美平面六边形蜂窝结构的单层GeC的声子输运。在不考虑玻恩有效电荷(Z)和介电常数([公式:见正文])的情况下,晶格热导率([公式:见正文])在350 K以上几乎呈线性下降,偏离了通常的[公式:见正文]定律。其潜在机制是,高频光学声子模式对[公式:见正文]的贡献随温度升高而增加,且在高温下该贡献超过了声学支的贡献。这可以通过Ge和C原子之间原子质量的巨大差异所导致的巨大声子带隙来理解,这对涉及高频光学声子的散射过程产生了重要影响。当考虑Z和[公式:见正文]时,高频光学声子模式的声子群速度和声子寿命相对于不考虑Z和[公式:见正文]时明显降低。群速度和声子寿命的降低导致高频光学声子模式对[公式:见正文]的贡献变小,这在单层GeC中产生了传统的[公式:见正文]关系。我们的工作突出了Z和[公式:见正文]对研究单层GeC声子输运的重要性,并激发了进一步的理论或实验努力来研究其他二维材料的热输运。

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