Division of Physics and Applied Physics School of Physical and Mathematical Sciences, Nanyang Technological University, Singapore, 637371, Singapore.
Key Laboratory of Functional Materials Physics and Chemistry of the Ministry of Education, Jilin Normal University, Changchun, 130103, China.
Small. 2017 Oct;13(40). doi: 10.1002/smll.201701887. Epub 2017 Aug 28.
Tungsten ditelluride (WTe ) is a semimetal with orthorhombic T phase that possesses some unique properties such as Weyl semimetal states, pressure-induced superconductivity, and giant magnetoresistance. Here, the high-pressure properties of WTe single crystals are investigated by Raman microspectroscopy and ab initio calculations. WTe shows strong plane-parallel/plane-vertical vibrational anisotropy, stemming from its intrinsic Raman tensor. Under pressure, the Raman peaks at ≈120 cm exhibit redshift, indicating structural instability of the orthorhombic T phase. WTe undergoes a phase transition to a monoclinic T' phase at 8 GPa, where the Weyl states vanish in the new T' phase due to the presence of inversion symmetry. Such T to T' phase transition provides a feasible method to achieve Weyl state switching in a single material without doping. The new T' phase also coincides with the appearance of superconductivity reported in the literature.
二碲化钨(WTe )是一种具有正交 T 相的半导体,具有一些独特的性质,如外尔半金属态、压力诱导超导和巨磁电阻。在这里,通过拉曼微光谱和第一性原理计算研究了 WTe 单晶的高压性质。WTe 表现出强烈的面平行/面垂直振动各向异性,源于其本征拉曼张量。在压力下,约 120cm 的拉曼峰发生红移,表明正交 T 相的结构不稳定性。WTe 在 8GPa 下经历从正交 T 相到单斜 T'相的相变,由于反演对称性的存在,新的 T'相中的外尔态消失。这种 T 到 T'的相变为在无需掺杂的情况下在单一材料中实现外尔态开关提供了一种可行的方法。新的 T'相也与文献中报道的超导性的出现相一致。