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Phonons and lattice thermal conductivities of graphene family

机译:石墨烯家族的声子和晶格热导体

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In the post-graphene era, there has been a significant upsurge of interest on the mechanical and thermal properties of two dimen-sional graphene-like honeycomb structures made of other group-IV elements. This article deals with application of first principle based density functional theory to investigate the lattice dynamics of the members of this extended graphene family. We explore the changes observed in the lattice thermal conductivity, adopting physical models for estimating phonon lifetimes. We use the Asen-Palmer modified version of Debye-Callaway theory to calculate the lattice thermal conductivity of graphene, as well as of low and double buckled silicene, germanene, and stanene. This allows us to establish a connection between the parameters such as group velocity, Gruneisen parameter, and Debye temperature of the acoustic phonon modes and the lattice thermal conductivity. Our calculations show that the presence of buckling reduces the group velocity and the Debye temperature of the sheets down the group, and hence, reduces their lattice thermal conductivity. However, there is no linear dependence between the buckling height and the observed lowering. An increase in buckling height in sheets with different geometries of the same atomic species, beyond a certain limit, does not lead to change in the group velocity and the Debye temperature of the sheets.
机译:在石墨烯时代,对由其他基团-IV元素制成的两种Dimen-Sional石墨烯的机械和热性能存在显着的兴趣。本文涉及第一个基于原则的密度泛函理论来研究这一扩展石墨烯家族成员的晶格动力学。我们探讨了晶格导热系数观察到的变化,采用物理模型来估计旋光寿命。我们使用Debye-Callaway理论的Asen-Palmer改良版本来计算石墨烯的晶格导热系数,以及低和双扣硅丁烯,锗和苯二烯。这使我们能够建立在声学声子模式的群体速度,Gruneisen参数和Deybe温度的参数之间建立连接和晶格导热率。我们的计算表明,屈曲的存在降低了组的群体速度和纸张的脱娇温度,因此降低了它们的晶格导热率。然而,屈曲高度与观察到的降低之间没有线性依赖性。在相同原子物质的不同几何形状的片材上增加屈曲高度,超出一定限度,不会导致群体速度和片材的脱娇温度的变化。

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