Emergence of quantum confinement in topological kagome superconductor CsV3Sb5

Author:

Cai Yongqing,Wang Yuan,Hao Zhanyang,Liu Yixuan,Sui Xuelei,Liang Zuowei,Ma Xiao-Ming,Zhang Fayuan,Shen Zecheng,Zhang Chengcheng,Jiang Zhicheng,Yang Yichen,Liu Wanling,Jiang Qi,Liu ZhengtaiORCID,Ye Mao,Shen Dawei,Gao Han,Xiao Hanbo,Liu ZhongkaiORCID,Sun Zhe,Liu Yi,Cui Shengtao,Chen Jiabin,Wang Le,Liu Cai,Lin JunhaoORCID,Huang BingORCID,Wang Zhenyu,Chen Xianhui,Mei Jia-Wei,Wang Jianfeng,Chen ChaoyuORCID

Abstract

AbstractQuantum confinement is a restriction on the motion of electrons in a material to specific region, resulting in discrete energy levels rather than continuous energy bands. In certain materials, quantum confinement could dramatically reshape the electronic structure and properties of the surface with respect to the bulk. Here, in the recently discovered kagome superconductors CsV3Sb5, we unveil the dominant role of quantum confinement in determining their surface electronic structure. Combining angle-resolved photoemission spectroscopy (ARPES) measurement and density-functional theory simulation, we report the observations of two-dimensional quantum well states due to the confinement of bulk electron pocket and Dirac cone to the nearly isolated surface layer. The theoretical calculations on the slab model also suggest that the ARPES observed spectra are almost entirely contributed by the top two layers. Our results not only explain the disagreement of band structures between the recent experiments and calculations, but also suggest an equally important role played by quantum confinement, together with strong correlation and band topology, in shaping the electronic properties of this material.

Publisher

Springer Science and Business Media LLC

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