论文标题

散装和双层的拓扑特性2M WS $ _2 $:一项第一原理研究

Topological Properties of Bulk and Bilayer 2M WS$_2$: A First-Principles Study

论文作者

Joseph, Nesta Benno, Narayan, Awadhesh

论文摘要

最近发现,观察到200万块WS $ _2 $的2M期表现出临界温度为8.8 K的超导性,这是超导过渡金属二核苷元中报告最高的。还预计将支持受保护的表面状态,它可能是潜在的拓扑超导体。在本研究中,我们对散装和双层2M WS $ _2 $进行了详细的第一原理分析。我们报告了对整体相的全面研究,将不同交换相关功能获得的结构和电子特性与实验报告的值进行了比较。通过计算$ z_2 $不变性和表面状态,我们为其非平凡带的性质提供了支持。基于从大体阶段分析中获得的见解,我们预测BiLayer 2M WS $ _2 $将是一种新的二维拓扑材料。我们从第一原理声子计算中展示了其动态稳定性,并介绍其电子属性,突出了W $ D $和S $ P $状态之间的频段反转。通过$ z_2 $不变的计算和边缘状态的计算,我们表明双层2M WS $ _2 $展示了受保护,强大的边缘状态。在这个新提出的双层中,反转的对称性破裂也导致存在浆果曲率偶极子和导致的非线性响应。我们计算浆果曲率分布和偶极子作为费米能的函数。我们建议BCD信号在Centrosymmmetric Bulk 2M WS $ _2 $中不存在,可以是双层的签名。我们希望我们的预测能够实现这种尚未发现的二维拓扑材料的实验意识。

Recently discovered 2M phase of bulk WS$_2$ was observed to exhibit superconductivity with a critical temperature of 8.8 K, the highest reported among superconducting transition metal dichalcogenides. Also predicted to support protected surface states, it could be a potential topological superconductor. In the present study, we perform a detailed first-principles analysis of bulk and bilayer 2M WS$_2$. We report a comprehensive investigation of the bulk phase, comparing structural and electronic properties obtained from different exchange correlation functionals to the experimentally reported values. By calculation of the $Z_2$ invariant and surface states, we give support for its non-trivial band nature. Based on the insights gained from the analysis of the bulk phase, we predict bilayer 2M WS$_2$ as a new two-dimensional topological material. We demonstrate its dynamical stability from first-principles phonon computations and present its electronic properties, highlighting the band inversions between the W $d$ and S $p$ states. By means of $Z_2$ invariant computations and a calculation of the edge states, we show that bilayer 2M WS$_2$ exhibits protected, robust edge states. The broken inversion symmetry in this newly proposed bilayer also leads to the presence of Berry curvature dipole and resulting non-linear responses. We compute the Berry curvature distribution and the dipole as a function of Fermi energy. We propose that BCD signals, which are absent in the centrosymmetric bulk 2M WS$_2$, can be signatures of the bilayer. We hope our predictions lead to the experimental realization of this as-yet-undiscovered two-dimensional topological material.

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