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Quantum Sensing of Nanoscale Magnetic Domains and Spin dynamics in Noncollinear Antiferromagnet Mn<sub>3</sub>Sn

ORAL

Abstract

Noncollinear antiferromagnets with novel magnetic order, vanishingly small net magnetization, and exotic spin properties hold enormous promise for developing next-generation, spintronic technologies. A major ongoing research focus of this community is to explore, control, and harness unconventional magnetic phases of this emergent material system in order to deliver state-of-the-art functionalities for modern microelectronic applications. Here we report direct imaging of magnetic domains of polycrystalline Mn3Sn films, a prototypical noncollinear chiral antiferromagnet, using nitrogen-vacancy-based single-spin scanning microscopy. Nanoscale evolution of local stray field patterns of Mn3Sn samples are systematically investigated in response to external driving forces, revealing the characteristic “heterogeneous” magnetic switching behaviors in polycrystalline textured Mn3Sn films. Our results contribute to a comprehensive understanding of inhomogeneous magnetic orders of noncollinear antiferromagnets, highlighting the potential of nitrogen-vacancy centers to investigate microscopic spin behaviors in a broad range of emergent condensed matter systems.

Publication: S. Li et al., Nano Letters 23, 5326 (2023). <br>G. Yan et al., Adv. Mater. 34, 2200327 (2022).

Presenters

  • Hailong Wang

    Georgia Institute of Technology

Authors

  • Hailong Wang

    Georgia Institute of Technology

  • Senlei Li

    Georgia Institute of Technology

  • Jingcheng Zhou

    Georgia Institute of Technology

  • Hanyi Lu

    University of California, San Diego

  • Yuxuan Xiao

    Georgia Institute of Technology

  • Eric E Fullerton

    University of California, San Diego

  • Hua Chen

    Colorado State University

  • Chunhui R Du

    Georgia Institute of Technology