Physical Review X (Dec 2018)

Robust and Clean Majorana Zero Mode in the Vortex Core of High-Temperature Superconductor (Li_{0.84}Fe_{0.16})OHFeSe

  • Qin Liu,
  • Chen Chen,
  • Tong Zhang,
  • Rui Peng,
  • Ya-Jun Yan,
  • Chen-Hao-Ping Wen,
  • Xia Lou,
  • Yu-Long Huang,
  • Jin-Peng Tian,
  • Xiao-Li Dong,
  • Guang-Wei Wang,
  • Wei-Cheng Bao,
  • Qiang-Hua Wang,
  • Zhi-Ping Yin,
  • Zhong-Xian Zhao,
  • Dong-Lai Feng

DOI
https://doi.org/10.1103/PhysRevX.8.041056
Journal volume & issue
Vol. 8, no. 4
p. 041056

Abstract

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The Majorana fermion, which is its own antiparticle and obeys non-Abelian statistics, plays a critical role in topological quantum computing. It can be realized as a bound state at zero energy, called a Majorana zero mode (MZM), in the vortex core of a topological superconductor, or at the ends of a nanowire when both superconductivity and strong spin orbital coupling are present. A MZM can be detected as a zero-bias conductance peak (ZBCP) in tunneling spectroscopy. However, in practice, clean and robust MZMs have not been realized in the vortices of a superconductor because of contamination from impurity states or other closely packed Caroli–de Gennes-Matricon (CdGM) states, which hampers further manipulations of MZMs. Here, using scanning tunneling spectroscopy, we show that a ZBCP well separated from the other discrete CdGM states exists ubiquitously in the cores of free vortices in the defect-free regions of (Li_{0.84}Fe_{0.16})OHFeSe, which has a superconducting transition temperature of 42 K. Moreover, a Dirac-cone-type surface state is observed by angle-resolved photoemission spectroscopy, and its topological nature is confirmed by band calculations. The observed ZBCP can naturally be attributed to a MZM arising from the chiral topological surface state of a bulk superconductor. Thus, (Li_{0.84}Fe_{0.16})OHFeSe provides an ideal platform for studying MZMs and topological quantum computing.