Evidence for one-dimensional chiral edge states in a magnetic Weyl semimetal Co3Sn2S2

  • Sean Howard
  • , Lin Jiao
  • , Zhenyu Wang
  • , Noam Morali
  • , Rajib Batabyal
  • , Pranab Kumar-Nag
  • , Nurit Avraham
  • , Haim Beidenkopf*
  • , Praveen Vir
  • , Enke Liu
  • , Chandra Shekhar
  • , Claudia Felser
  • , Taylor Hughes
  • , Vidya Madhavan*
  • *Corresponding author for this work

Research output: Contribution to journalArticlepeer-review

64 Citations (Scopus)

Abstract

The physical realization of Chern insulators is of fundamental and practical interest, as they are predicted to host the quantum anomalous Hall (QAH) effect and topologically protected chiral edge states which can carry dissipationless current. Current realizations of the QAH state often require complex heterostructures and sub-Kelvin temperatures, making the discovery of intrinsic, high temperature QAH systems of significant interest. In this work we show that time-reversal symmetry breaking Weyl semimetals, being essentially stacks of Chern insulators with inter-layer coupling, may provide a new platform for the higher temperature realization of robust chiral edge states. We present combined scanning tunneling spectroscopy and theoretical investigations of the magnetic Weyl semimetal, Co3Sn2S2. Using modeling and numerical simulations we find that depending on the strength of the interlayer coupling, chiral edge states can be localized on partially exposed kagome planes on the surfaces of a Weyl semimetal. Correspondingly, our dI/dV maps on the kagome Co3Sn terraces show topological states confined to the edges which display linear dispersion. This work provides a new paradigm for realizing chiral edge modes and provides a pathway for the realization of higher temperature QAH effect in magnetic Weyl systems in the two-dimensional limit.

Original languageEnglish
Article number4269
Number of pages7
JournalNature Communications
Volume12
Issue number1
DOIs
Publication statusPublished - 13 Jul 2021

Funding

The research at the University of Illinois at Urbana-Champaign was primarily supported by NSF through Materials Research Science and Engineering Center DMR-1720633. V.M. acknowledges partial support from the Gordon and Betty Moore Foundation's EPiQS Initiative, Grant GBMF9465. C.F. acknowledges support by the European Research Council (ERC) Advanced Grant No. 742068 (TOPMAT), Deutsche Forschungsgemeinschaft (DFG) under SFB 1143 (Project No. 247310070), and Wurzburg-Dresden Cluster of Excellence on Complexity and Topology in Quantum Matter-ct.qmat (EXC 2147, project no. 39085490). H.B. acknowledges support by the European Research Council (ERC) starting grant No. 678702 and German Science Foundation (DFG) by project A02 of the CRC-TR 183 "entangled states of matter.

All Science Journal Classification (ASJC) codes

  • General Chemistry
  • General Biochemistry,Genetics and Molecular Biology
  • General Physics and Astronomy

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