Ferromagnetic-antiferromagnetic coexisting ground state and exchange bias effects in MnBi4Te7 and MnBi6Te10

  • Xiaolong Xu
  • , Shiqi Yang
  • , Huan Wang
  • , Roger Guzman
  • , Yuchen Gao
  • , Yaozheng Zhu
  • , Yuxuan Peng
  • , Zhihao Zang
  • , Ming Xi
  • , Shangjie Tian
  • , Yanping Li
  • , Hechang Lei
  • , Zhaochu Luo
  • , Jinbo Yang
  • , Yeliang Wang
  • , Tianlong Xia*
  • , Wu Zhou*
  • , Yuan Huang*
  • , Yu Ye*
  • *Corresponding author for this work

Research output: Contribution to journalArticlepeer-review

39 Citations (Scopus)

Abstract

Natural superlattice structures MnBi2Te4(Bi2Te3)n (n = 1, 2,..), in which magnetic MnBi2Te4 layers are separated by nonmagnetic Bi2Te3 layers, hold band topology, magnetism and reduced interlayer coupling, providing a promising platform for the realization of exotic topological quantum states. However, their magnetism in the two-dimensional limit, which is crucial for further exploration of quantum phenomena, remains elusive. Here, complex ferromagnetic-antiferromagnetic coexisting ground states that persist down to the 2-septuple layers limit are observed and comprehensively investigated in MnBi4Te7 (n = 1) and MnBi6Te10 (n = 2). The ubiquitous Mn-Bi site mixing modifies or even changes the sign of the subtle interlayer magnetic interactions, yielding a spatially inhomogeneous interlayer coupling. Further, a tunable exchange bias effect, arising from the coupling between the ferromagnetic and antiferromagnetic components in the ground state, is observed in MnBi2Te4(Bi2Te3)n (n = 1, 2), which provides design principles and material platforms for future spintronic devices. Our work highlights a new approach toward the fine-tuning of magnetism and paves the way for further study of quantum phenomena in MnBi2Te4(Bi2Te3)n (n = 1, 2) as well as their magnetic applications.

Original languageEnglish
Article number7646
JournalNature Communications
Volume13
Issue number1
DOIs
Publication statusPublished - Dec 2022
Externally publishedYes

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