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应变驱动的六方硼磷单层中的高导热性。

Strain-Driven High Thermal Conductivity in Hexagonal Boron Phosphide Monolayer.

作者信息

Chen Xihao, Wang Guangzhao, Li Bingke, Wang Ning

机构信息

School of Materials Science and Engineering, Chongqing University of Arts and Sciences, Chongqing 402160, China.

Key Laboratory of Extraordinary Bond Engineering and Advanced Materials Technology of Chongqing, School of Electronic Information Engineering, Yangtze Normal University, Chongqing 408100, China.

出版信息

Langmuir. 2024 Feb 13;40(6):3095-3104. doi: 10.1021/acs.langmuir.3c03472. Epub 2024 Feb 1.

Abstract

Two-dimensional graphenelike material, hexagonal boron phosphide (h-BP), is a promising candidate for electronic and optoelectronic devices because of its suitable band gap and high carrier mobility. Especially from the ultrahigh lattice thermal conductivity (κ), it exhibits great potential to solve the challenges of future thermal management applications. Here, the excellent lattice thermal transport properties of the h-BP monolayer are systematically analyzed at the atomic level based on the first-principles method. The results show that the ultrahigh κ value of the h-BP monolayer is attributed to its high phonon group velocity and long phonon lifetime and the strong phonon hydrodynamic effect. We further explore the influence of the tensile strain on the thermal transport properties of the h-BP monolayer. As the strain increases from 0 to 8%, the κ value shows a trend of first increasing and then decreasing due to the coeffect of strain-driven changes for phonon harmonicity and anharmonicity. Under a strain of 6%, the κ value of the h-BP monolayer is as high as 795 W/mK at 300 K, which is about 2.22 times larger than that of 357 W/mK without strain. Such a significant increase in the κ value is mainly due to the increased phonon group velocity and decreased Grüneisen parameter caused by strain. This work is helpful to understand the critical role of tensile strain in lattice thermal transport of two-dimensional graphenelike materials. It is conducive to promoting the thermal management application of the h-BP monolayer.

摘要

二维类石墨烯材料六方硼磷化物(h-BP)因其合适的带隙和高载流子迁移率,是电子和光电器件的一个有前景的候选材料。特别是由于其超高的晶格热导率(κ),它在解决未来热管理应用的挑战方面展现出巨大潜力。在此,基于第一性原理方法在原子水平上系统地分析了h-BP单层的优异晶格热输运性质。结果表明,h-BP单层的超高κ值归因于其高声子群速度、长声子寿命以及强声子流体动力学效应。我们进一步探究了拉伸应变对h-BP单层热输运性质的影响。随着应变从0增加到8%,由于应变驱动的声子简谐性和非简谐性变化的共同作用,κ值呈现出先增加后减小的趋势。在6%的应变下,h-BP单层在300 K时的κ值高达795 W/mK,约为无应变时357 W/mK的2.22倍。κ值如此显著的增加主要是由于应变导致的声子群速度增加和格林艾森参数减小。这项工作有助于理解拉伸应变在二维类石墨烯材料晶格热输运中的关键作用。它有利于推动h-BP单层的热管理应用。

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