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Electronic Instability of Kagome Metal CsV3Sb5 in the 2×2×2 Charge Density Wave State

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【作者】 朱红恩李彤瑞喻芳航李昱良王盛吴云波刘站锋尚政明崔胜涛刘毅张国斌张李东王震宇吴涛应剑俊陈仙辉孙喆

【Author】 Hongen Zhu;Tongrui Li;Fanghang Yu;Yuliang Li;Sheng Wang;Yunbo Wu;Zhanfeng Liu;Zhengming Shang;Shengtao Cui;Yi Liu;Guobin Zhang;Lidong Zhang;Zhenyu Wang;Tao Wu;Jianjun Ying;Xianhui Chen;Zhe Sun;National Synchrotron Radiation Laboratory,University of Science and Technology of China;Department of Physics,CAS Key Laboratory of Strongly-coupled Quantum Matter Physics,University of Science and Technology of China;CAS Center for Excellence in Superconducting Electronics (CENSE);Collaborative Innovation Center of Advanced Microstructures;CAS Center for Excellence in Quantum Information and Quantum Physics;

【通讯作者】 孙喆;

【机构】 National Synchrotron Radiation Laboratory,University of Science and Technology of ChinaDepartment of Physics,CAS Key Laboratory of Strongly-coupled Quantum Matter Physics,University of Science and Technology of ChinaCAS Center for Excellence in Superconducting Electronics (CENSE)Collaborative Innovation Center of Advanced MicrostructuresCAS Center for Excellence in Quantum Information and Quantum Physics

【摘要】 Recently discovered kagome metals AV3Sb5(A = K,Rb,and Cs) provide an ideal platform to study the correlation among nontrivial band topology,unconventional charge density wave(CDW),and superconductivity.The evolution of electronic structures associated with the change of lattice modulations is crucial for understanding of the CDW mechanism,with the combination of angle-resolved photoemission spectroscopy(ARPES)measurements and density functional theory calculations,we investigate how band dispersions change with the increase of lattice distortions.In particular,we focus on the electronic states around ■ point,where the van Hove singularities are expected to play crucial roles in the CDW transition.Previous ARPES studies reported a spectral weight splitting of the van Hove singularity around ■ point,which is associated with the 3D lattice modulations.Our studies reveal that this “splitting” can be connected to the two van Hove singularities at kz = 0 and kz = π/c in the normal states.When the electronic system enters into the CDW state,both van Hove singularities move down.Such novel properties are important for understanding of the CDW transition.

【Abstract】 Recently discovered kagome metals AV3Sb5(A = K,Rb,and Cs) provide an ideal platform to study the correlation among nontrivial band topology,unconventional charge density wave(CDW),and superconductivity.The evolution of electronic structures associated with the change of lattice modulations is crucial for understanding of the CDW mechanism,with the combination of angle-resolved photoemission spectroscopy(ARPES)measurements and density functional theory calculations,we investigate how band dispersions change with the increase of lattice distortions.In particular,we focus on the electronic states around ■ point,where the van Hove singularities are expected to play crucial roles in the CDW transition.Previous ARPES studies reported a spectral weight splitting of the van Hove singularity around ■ point,which is associated with the 3D lattice modulations.Our studies reveal that this “splitting” can be connected to the two van Hove singularities at kz = 0 and kz = π/c in the normal states.When the electronic system enters into the CDW state,both van Hove singularities move down.Such novel properties are important for understanding of the CDW transition.

【关键词】 singularitynontrivialconnectedtopologyenterssplittingresolved
【基金】 supported by the National Key R&D Program of China (Grant No.2017YFA0402901);the National Natural Science Foundation of China (Grant No.U2032153);the Strategic Priority Research Program of the Chinese Academy of Sciences (Grant No.XDB25000000);the Users with Excellence Program of Hefei Science Center of the Chinese Academy of Sciences (Grant No.2021HSC-UE004)
  • 【文献出处】 Chinese Physics Letters ,中国物理快报(英文版) , 编辑部邮箱 ,2023年04期
  • 【分类号】O469
  • 【下载频次】23
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