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类石墨烯硼烯的声子稳定性和声子输运

Phonon stability and phonon transport of graphene-like borophene.

作者信息

Yin Yan, Li Dengfeng, Hu Yanxiao, Ding Guangqian, Zhou Hangbo, Zhang Gang

机构信息

School of Science, Chongqing University of Posts and Telecommunications, Chongqing 400065, People's Republic of China.

出版信息

Nanotechnology. 2020 Jul 31;31(31):315709. doi: 10.1088/1361-6528/ab824c. Epub 2020 Mar 23.

Abstract

Recent decades have seen tremendous progress in quantitative understanding of phonon transport, which is critical for the thermal management of various functional devices and the proper optimization of thermoelectric materials. In this work, using a first-principles based calculation combined with the non-equilibrium Green's function and a phonon Boltzmann transport equation, we provide a systematic study of the phonon stability and phonon transport of a monolayer boron sheet with a honeycomb, graphene-like structure (graphene-like borophene) in both ballistic and diffusive regimes. For free-standing graphene-like borophene, phonon instabilities occur near the centre of the Brillouin zone, implying elastic instability. Investigation of the electronic structures shows that the phonon instability is due to the deficiency of electrons. Our first-principles results show that with net charge doping and in-plane tensile strain, graphene-like borophene becomes thermodynamically stable in ideal planar nature, because the bonding characteristic is modified. At room temperature, the ballistic thermal conductance of graphene-like borophene (7.14 nWK nm) is higher than that of graphene (4.1 nWK nm), due to high phonon transmission. However, its diffusive thermal conductivity is two orders of magnitude lower than graphene, because the phonon relaxation time is dramatically reduced compared with its carbon counterpart. Although the phonon group velocity and phonon anharmonicity are comparable with those of graphene, the suppressed phonon space results in dramatically strong phonon-phonon scattering. These thermal transport characteristics in both ballistic and diffusive regimes are of fundamental and technological relevance and provide guidance for applications of boron-based nanomaterials in which thermal conduction is the major concern.

摘要

近几十年来,在声子输运的定量理解方面取得了巨大进展,这对于各种功能器件的热管理和热电材料的适当优化至关重要。在这项工作中,我们结合基于第一性原理的计算、非平衡格林函数和声子玻尔兹曼输运方程,对具有蜂窝状、类石墨烯结构(类石墨烯硼烯)的单层硼片在弹道和扩散区域的声子稳定性和声子输运进行了系统研究。对于独立的类石墨烯硼烯,在布里渊区中心附近会出现声子不稳定性,这意味着弹性不稳定性。对电子结构的研究表明,声子不稳定性是由于电子不足所致。我们的第一性原理结果表明,通过净电荷掺杂和面内拉伸应变,类石墨烯硼烯在理想平面状态下变得热力学稳定,因为其键合特性发生了改变。在室温下,由于高声子传输率,类石墨烯硼烯的弹道热导率(7.14 nWK nm)高于石墨烯(4.1 nWK nm)。然而,其扩散热导率比石墨烯低两个数量级,因为与碳基对应物相比,声子弛豫时间显著缩短。尽管声子群速度和声子非谐性与石墨烯相当,但声子空间的抑制导致声子 - 声子散射显著增强。弹道和扩散区域的这些热输运特性具有基础和技术相关性,并为热传导是主要关注点的硼基纳米材料的应用提供了指导。

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