APS Logo

Quantum Imaging of Magnetic Phase Transitions in Intrinsic Magnetic Topological Nanoflakes

ORAL

Abstract

Recently, the family of intrinsic topological magnet MnBi2Te4(Bi2Te3)n has emerged as an attractive material platform to explore topologically protected quantum spin and charge transport behaviors in a broad magnetic field and temperature regime. Examples include the high-temperature quantum anomalous Hall effect, layer Hall effect, axion insulator phase, and many others. Establishment of a detailed knowledge of the local magnetic properties of MnBi2Te4(Bi2Te3)n contributes to a comprehensive understanding of the observed exotic quantum transport behaviors. Here, we introduce nitrogen-vacancy (NV) centers as single-spin sensors to directly image the local static and dynamic spin properties of MnBi2Te4(Bi2Te3)n nanoflakes, revealing the detailed process of the magnetic phase transition in nanometer length scale. We also reveal the intriguing physics underlying the spin transport in MnBi2Te4(Bi2Te3)n. Our results illustrate the unique capability enabled by NV centers for investigating the interplay between magnetism and topology potentially in broad range of quantum materials.

Presenters

  • Mengqi Huang

    University of California, San Diego

Authors

  • Mengqi Huang

    University of California, San Diego

  • Chaowei Hu

    University of California, Los Angeles

  • Nathan J McLaughlin

    University of California, San Diego

  • Shu Zhang

    University of California, Los Angeles

  • Hanyi Lu

    University of California, San Diego

  • Hailong Wang

    University of California, San Diego

  • Yaroslav Tserkovnyak

    University of California, Los Angeles

  • Ni Ni

    University of California, Los Angeles

  • Chunhui R Du

    University of California, San Diego