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拓扑 Kagome 金属 RbV₃Sb₅ 电荷密度波态中新的范霍夫奇点的出现

Emergence of New van Hove Singularities in the Charge Density Wave State of a Topological Kagome Metal RbV_{3}Sb_{5}.

作者信息

Cho Soohyun, Ma Haiyang, Xia Wei, Yang Yichen, Liu Zhengtai, Huang Zhe, Jiang Zhicheng, Lu Xiangle, Liu Jishan, Liu Zhonghao, Li Jun, Wang Jinghui, Liu Yi, Jia Jinfeng, Guo Yanfeng, Liu Jianpeng, Shen Dawei

机构信息

Center for Excellence in Superconducting Electronics, State Key Laboratory of Functional Materials for Informatics, Shanghai Institute of Microsystem and Information Technology, Chinese Academy of Sciences, Shanghai 200050, China.

School of Physical Science and Technology, ShanghaiTech University, Shanghai 201210, China.

出版信息

Phys Rev Lett. 2021 Dec 3;127(23):236401. doi: 10.1103/PhysRevLett.127.236401.

Abstract

Quantum materials with layered kagome structures have drawn considerable attention due to their unique lattice geometry, which gives rise to flat bands together with Dirac-like dispersions. Recently, vanadium-based materials with layered kagome structures were discovered to be topological metals, which exhibit charge density wave (CDW) properties, significant anomalous Hall effect, and unusual superconductivity at low temperatures. Here, we employ angle-resolved photoemission spectroscopy to investigate the electronic structure evolution upon the CDW transition in a vanadium-based kagome material RbV_{3}Sb_{5}. The CDW phase transition gives rise to a partial energy gap opening at the boundary of the Brillouin zone and, most importantly, the emergence of new van Hove singularities associated with large density of states, which are absent in the normal phase and might be related to the superconductivity observed at lower temperatures. Our work sheds light on the microscopic mechanisms for the formation of the CDW and superconducting states in these topological kagome metals.

摘要

具有层状 Kagome 结构的量子材料因其独特的晶格几何结构而备受关注,这种结构会产生平带以及类狄拉克色散。最近,人们发现具有层状 Kagome 结构的钒基材料是拓扑金属,它们在低温下表现出电荷密度波(CDW)特性、显著的反常霍尔效应和异常的超导性。在这里,我们利用角分辨光电子能谱来研究钒基 Kagome 材料 RbV₃Sb₅ 在 CDW 转变时的电子结构演化。CDW 相变在布里渊区边界处导致部分能隙打开,最重要的是,出现了与高态密度相关的新范霍夫奇点,这些奇点在正常相中不存在,并且可能与在较低温度下观察到的超导性有关。我们的工作揭示了这些拓扑 Kagome 金属中 CDW 和超导态形成的微观机制。

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