Wide Field Imaging of Intrinsic Spin Fluctuations in van der Waals Ferromagnet by Spin Defects in Hexagonal Boron Nitride
ORAL
Abstract
Recently, spin defects in hexagonal boron nitride (hBN) have emerged as a prominent candidate for implementing state-of-the-art quantum sensing research with optimal spatial and field sensitivity. Many of these advantages result from the remarkable compatibility to device integration and improved versatility for establishing nanoscale proximity with objects of interest. Taking advantage of boron vacancy spin defects in hBN, here we report nanoscale quantum imaging of low-dimensional ferromagnetism sustained in Fe3GeTe2/hBN van der Waals heterostructures. Using spin relaxometry methods, we have observed spatially varying magnetic fluctuations in the exfoliated Fe3GeTe2 flake, whose magnitude reaches a peak value around the Curie temperature, in consistent with the expected ferromagnetic phase transition. Our results demonstrate the capability of two-dimensional spin defects of investigating local magnetic properties of layered materials in an accessible and precise way, providing new opportunities for developing next-generation, transformative quantum sensing metrology.
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Publication: Huang, M., Zhou, J., Chen, D. et al. Wide field imaging of van der Waals ferromagnet Fe3GeTe2 by spin defects in hexagonal boron nitride. Nat Commun 13, 5369 (2022).
Presenters
Mengqi Huang
University of California, San Diego
Authors
Mengqi Huang
University of California, San Diego
Jingcheng Zhou
University of California, San Diego
Di Chen
University of Houston
Hanyi Lu
University of California San Diego, University of California, San Diego
Nathan J McLaughlin
University of California, San Diego
Senlei Li
University of California, San Diego
Mohammed A Alghamdi
University of California, Riverside
Dziga Djugba
University of California San Diego, University of California, San Diego