Evidence for time-reversal symmetry-breaking kagome superconductivity

  • Hanbin Deng
  • , Guowei Liu
  • , Z. Guguchia
  • , Tianyu Yang
  • , Jinjin Liu
  • , Zhiwei Wang*
  • , Yaofeng Xie
  • , Sen Shao
  • , Haiyang Ma
  • , William Liège
  • , Frédéric Bourdarot
  • , Xiao Yu Yan
  • , Hailang Qin
  • , C. Mielke
  • , R. Khasanov
  • , H. Luetkens
  • , Xianxin Wu
  • , Guoqing Chang
  • , Jianpeng Liu
  • , Morten Holm Christensen
  • Andreas Kreisel, Brian Møller Andersen, Wen Huang, Yue Zhao, Philippe Bourges, Yugui Yao, Pengcheng Dai, Jia Xin Yin*
*Corresponding author for this work

Research output: Contribution to journalLetterpeer-review

19 Citations (Scopus)

Abstract

Superconductivity and magnetism are often antagonistic in quantum matter, although their intertwining has long been considered in frustrated-lattice systems. Here we utilize scanning tunnelling microscopy and muon spin resonance to demonstrate time-reversal symmetry-breaking superconductivity in kagome metal Cs(V, Ta)3Sb5, where the Cooper pairing exhibits magnetism and is modulated by it. In the magnetic channel, we observe spontaneous internal magnetism in a fully gapped superconducting state. Under the perturbation of inverse magnetic fields, we detect a time-reversal asymmetrical interference of Bogoliubov quasi-particles at a circular vector. At this vector, the pairing gap spontaneously modulates, which is distinct from pair density waves occurring at a point vector and consistent with the theoretical proposal of an unusual interference effect under time-reversal symmetry breaking. The correlation between internal magnetism, Bogoliubov quasi-particles and pairing modulation provides a chain of experimental indications for time-reversal symmetry-breaking kagome superconductivity.

Original languageEnglish
Pages (from-to)1639-1644
Number of pages6
JournalNature Materials
Volume23
Issue number12
DOIs
Publication statusPublished - Dec 2024

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