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手性晶体中的手性锁定电荷密度波

Chirality locking charge density waves in a chiral crystal.

作者信息

Li Geng, Yang Haitao, Jiang Peijie, Wang Cong, Cheng Qiuzhen, Tian Shangjie, Han Guangyuan, Shen Chengmin, Lin Xiao, Lei Hechang, Ji Wei, Wang Ziqiang, Gao Hong-Jun

机构信息

Institute of Physics, Chinese Academy of Sciences, 100190, Beijing, China.

School of Physical Sciences, University of Chinese Academy of Sciences, 100190, Beijing, China.

出版信息

Nat Commun. 2022 May 25;13(1):2914. doi: 10.1038/s41467-022-30612-0.

Abstract

In Weyl semimetals, charge density wave (CDW) order can spontaneously break the chiral symmetry, gap out the Weyl nodes, and drive the material into the axion insulating phase. Investigations have however been limited since CDWs are rarely seen in Weyl semimetals. Here, using scanning tunneling microscopy/spectroscopy (STM/S), we report the discovery of a novel unidirectional CDW order on the (001) surface of chiral crystal CoSi - a unique Weyl semimetal with unconventional chiral fermions. The CDW is incommensurate with both lattice momentum and crystalline symmetry directions, and exhibits an intra unit cell π phase shift in the layer stacking direction. The tunneling spectrum shows a particle-hole asymmetric V-shaped energy gap around the Fermi level that modulates spatially with the CDW wave vector. Combined with first-principle calculations, we identify that the CDW is locked to the crystal chirality and is related by a mirror reflection between the two enantiomers of the chiral crystal. Our findings reveal a novel correlated topological quantum state in chiral CoSi crystals and raise the potential for exploring the unprecedented physical behaviors of unconventional chiral fermions.

摘要

在外尔半金属中,电荷密度波(CDW)序可自发打破手性对称性,使外尔节点带隙化,并驱使材料进入轴子绝缘相。然而,由于在外尔半金属中很少见到CDW,相关研究一直受限。在此,我们利用扫描隧道显微镜/能谱(STM/S),报告了在手性晶体CoSi(一种具有非常规手性费米子的独特外尔半金属)的(001)表面发现一种新型单向CDW序。该CDW与晶格动量和晶体对称方向均不匹配,且在层堆叠方向上表现出晶胞内π相移。隧道能谱显示,在费米能级附近存在一个粒子-空穴不对称的V形能隙,其随CDW波矢在空间上调制。结合第一性原理计算,我们确定该CDW与晶体手性锁定,并且在手性晶体的两种对映体之间通过镜面反射相关联。我们的发现揭示了手性CoSi晶体中一种新型的关联拓扑量子态,并为探索非常规手性费米子前所未有的物理行为带来了潜力。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/05da/9133074/1b7ccbcd22bb/41467_2022_30612_Fig1_HTML.jpg

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