Nanoscale Magnetic Domains in Polycrystalline Mn<sub>3</sub>Sn Films Imaged by a Scanning Single-Spin Magnetometer.

Li, Senlei; Huang, Mengqi; Lu, Hanyi; McLaughlin, Nathan J; Xiao, Yuxuan; Zhou, Jingcheng; Fullerton, Eric E; Chen, Hua et al. · Nano Lett · 2023

basic_science · Level V

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Abstract

Noncollinear antiferromagnets with novel magnetic orders, vanishingly small net magnetization, and exotic spin related properties hold enormous promise for developing next-generation, transformative spintronic applications. A major ongoing research focus of this community is to explore, control, and harness unconventional magnetic phases of this emergent material system to deliver state-of-the-art functionalities for modern microelectronics. Here we report direct imaging of magnetic domains of polycrystalline Mn<sub>3</sub>Sn films, a prototypical noncollinear antiferromagnet, using nitrogen-vacancy-based single-spin scanning microscopy. Nanoscale evolution of local stray field patterns of Mn<sub>3</sub>Sn samples are systematically investigated in response to external driving forces, revealing the characteristic "heterogeneous" magnetic switching behaviors in polycrystalline textured Mn<sub>3</sub>Sn films. Our results contribute to a comprehensive understanding of inhomogeneous magnetic orders of noncollinear antiferromagnets, highlighting the potential of nitrogen-vacancy centers to study microscopic spin properties of a broad range of emergent condensed matter systems.