Common sublattice-pure van Hove singularities in the kagome superconductors $\textit{A}$V$_{3}$Sb$_{5}$ ($\textit{A}$ = K, Rb, Cs)
Yujie Lan, Yuhao Lei, Congcong Le, Brenden R. Ortiz, Nicholas C. Plumb, Milan Radovic, Xianxin Wu, Ming Shi, Stephen D. Wilson, Yong Hu

TL;DR
This study reveals universal sublattice-pure van Hove singularities in kagome superconductors A V3Sb5, linking hybridization-driven VHSs to charge density wave order and electronic instabilities.
Contribution
It uncovers common sublattice-pure VHSs in A V3Sb5 driven by hybridization, providing a unified understanding of their electronic instabilities and exotic orders.
Findings
Identification of multiple VHSs near E_F from ARPES data
Discrepancies between experimental results and DFT predictions
VHSs arising from V-d and Sb-p hybridization promote charge order
Abstract
Kagome materials offer a versatile platform for exploring correlated and topological quantum states, where van Hove singularities (VHSs) play a pivotal role in driving electronic instabilities, exhibiting distinct behaviors depending on electron filling and interaction settings. In the recently discovered kagome superconductors VSb ( = K, Rb, Cs), unconventional charge density wave order, superconductivity, and electronic chirality emerge, yet the nature of VHSs near the Fermi level () and their connection to these exotic orders remain elusive. Here, using high-resolution polarization-dependent angle-resolved photoemission spectroscopy, we uncover a universal electronic structure across VSb that is distinct from density-functional theory predictions that show noticeable discrepancies. We identify multiple…
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Taxonomy
TopicsTopological Materials and Phenomena · Advanced Condensed Matter Physics · Organic and Molecular Conductors Research
