论文标题

$β$ -as $ _2 $ te $ _3 $:压力引起的3D DIRAC半金属

$β$-As$_2$Te$_3$: Pressure-Induced 3D Dirac Semi-Metal

论文作者

da Silva, E. Lora, Leonardo, A., Yang, Tao, Santos, M. C., Vilaplana, R., Gallego-Parra, S., Bergara, A., Manjón, F. J.

论文摘要

我们报告了$β$ -as $ _2 $ _2 $ te $ _3 $($ r \ bar {3} m $ symetry)的理论\ textit {ab-initio}的研究,最高为12 gpa。我们已经系统地表征了由压力变化引起的系统的振动和电子变化。使用\ textIt {qs} GW在不同压力下计算的电子带分散剂显示一个绝缘子 - 金属过渡。在房间压力下,系统是一个具有小带隙的半导体,价和传导带呈现抛物线常规分散体。然而,大约2 GPA频带的抛物线形状在费米级别变成线性并触摸。这意味着这种化合物经历了压力诱导的拓扑相变为石墨烯的3D类似物,被称为3D狄拉克半金属,具有无间隙的电子激发。在越来越多的压力下,可以证明电子带隙的特征从直接到间接的变化。在7 GPA时,我们观察到了负带隙特征的形成,该特征的压力持续到12 GPA。拓扑绝缘功能从2到12 GPA证明,Z $ _4 $ = 3拓扑指数。此外,通过调查不同压力的晶格热导率,我们观察到0.5 gpa的超低价值为$κ__\ textrm {l} $ 300 k(0.294和0.294和0.486 wm $^{ - 1} $ k $ k $^^{ - 1} $ y $ y $ - $ - $ - $ - $ - $ - $ - $ - $ - $ - $ - $ - 低频光学模式。在2 GPA $κ_\ Textrm {l} $上增加到1.170和0.669 wm $^{ - 1} $ k $^{ - 1} $,分别为$ x $ - $ y $ -Axis和$ z $ -Axis。在4 GPA时,两个不同的晶体学轴之间的热导率值倾向于近似,分别为1.495和1.433 wm $^{ - 1} $ k $^{ - 1} $,沿$ x $ - $ y $ y-axis和$ z $ axis和$ z $ - 轴。

We report a theoretical \textit{ab-initio} study of $β$-As$_2$Te$_3$ ($R\bar{3}m$ symmetry) at hydrostatic pressures up to 12 GPa. We have systematically characterized the vibrational and electronic changes of the system induced by the pressure variation. The electronic band dispersions calculated at different pressures using \textit{QS}GW show an insulator-metal transition. At room pressure the system is a semiconductor with small band-gap, and the valence and conduction bands present a parabolic conventional dispersion. However around 2 GPa the parabolic shape of the bands become linear and touch at the Fermi level. This means that this compound undergoes a pressure-induced topological phase transition to a 3D analog of graphene, known as a 3D Dirac semi-metal, with gapless electronic excitations. At increasing pressures the gap reopens and variation of the character of the electronic band-gap from direct to indirect is evidenced. At 7 GPa we observe the formation of a negative band-gap character, which persists for pressures up to 12 GPa. Topological insulating features are evidenced from 2 to 12 GPa with a Z$_4$=3 topological index. Moreover by investigating the lattice thermal-conductivity at different pressures, we observe an ultra low value of $κ_\textrm{L}$ at 300 K for 0.5 GPa (0.294 and 0.486 Wm$^{-1}$K$^{-1}$ for the $x$-$y$-axis and for the $z$-axis, respectively) which is the result of existing low-frequency optical modes. At 2 GPa $κ_\textrm{L}$ increases to 1.170 and 0.669 Wm$^{-1}$K$^{-1}$, for the $x$-$y$-axis and for the $z$-axis, respectively. At 4 GPa the thermal-conductivity values between the two distinct crystallographic axis tend to approximate, with 1.495 and 1.433 Wm$^{-1}$K$^{-1}$, along the $x$-$y$-axis and the $z$-axis, respectively.

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