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Conventional superconductivity in the doped kagome superconductor Cs(V0.86Ta0.14)3Sb5 from vortex lattice studies

  • Yaofeng Xie
  • , Nathan Chalus
  • , Zhiwei Wang
  • , Weiliang Yao
  • , Jinjin Liu
  • , Yugui Yao
  • , Jonathan S. White
  • , Lisa M. DeBeer-Schmitt
  • , Jia Xin Yin
  • , Pengcheng Dai
  • , Morten Ring Eskildsen*
  • *此作品的通讯作者
  • Rice University
  • University of Notre Dame
  • Beijing Institute of Technology
  • Paul Scherrer Institute
  • Oak Ridge National Laboratory
  • Southern University of Science and Technology

科研成果: 期刊稿件文章同行评审

摘要

A hallmark of unconventional superconductors is a complex electronic phase diagram where intertwined orders of charge-spin-lattice degrees of freedom compete and coexist. While the kagome metals such as CsV3Sb5 also exhibit complex behavior, involving coexisting charge density wave order and superconductivity, much is unclear about the microscopic origin of the superconducting pairing. We study the vortex lattice in the superconducting state of Cs(V0.86Ta0.14)3Sb5, where the Ta-doping suppresses charge order and enhances superconductivity. Using small-angle neutron scattering, a strictly bulk probe, we show that the vortex lattice exhibits a strikingly conventional behavior. This includes a triangular symmetry with a period consistent with 2e-pairing, a field dependent scattering intensity that follows a London model, and a temperature dependence consistent with a uniform superconducting gap. Our results suggest that optimal bulk superconductivity in Cs(V1−xTax)3Sb5 arises from a conventional Bardeen-Cooper-Schrieffer electron-lattice coupling, different from spin fluctuation mediated unconventional copper- and iron-based superconductors.

源语言英语
文章编号6467
期刊Nature Communications
15
1
DOI
出版状态已出版 - 12月 2024

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