4.6 Article

DyOCl: A rare-earth based two-dimensional van der Waals material with strong magnetic anisotropy

Journal

PHYSICAL REVIEW B
Volume 104, Issue 21, Pages -

Publisher

AMER PHYSICAL SOC
DOI: 10.1103/PhysRevB.104.214410

Keywords

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Funding

  1. National Natural Science Foundation of China [12074426, 11227906, 12004426, 12104255]
  2. Fundamental Research Funds for the Central Universities
  3. Research Funds of Renmin University of China [20XNLG19, 21XNLG20]

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Rare-earth based van der Waals material DyOCl is explored in this research for intrinsic two-dimensional magnetism, revealing its large magnetic anisotropy and ferromagnetic potential. Mechanical exfoliation of DyOCl to seven layers is demonstrated, making it a promising material for investigating 2D f-electron magnetism and spintronic applications at the nanoscale.
Comparing with the widely known transitional metal based van der Waals (vdW) materials, rare-earth based ones are rarely explored in the research of intrinsic two-dimensional (2D) magnetism. In this work, we report the physical properties of DyOCl, a rare-earth based vdW magnetic insulator with a direct band gap of similar to 5.72 eV. The magnetic order of bulk DyOCl is determined by neutron scattering as the A-type antiferromagnetic structure below the Neel temperature TN = 10 K. The large magnetic moment near 10.1 mu B/Dy lies parallel to the a-axis with strong uniaxial magnetic anisotropy. At 2 K, a moderate magnetic field (similar to 2 T ) applied along the easy axis generates spin-flip transitions and polarizes DyOCl to a ferromagnetic state. Density functional theory calculations reveal an extremely large magnetic anisotropy energy (-5850 mu eV/Dy) for DyOCl, indicating the great potential to realize magnetism in the 2D limit. Furthermore, the mechanical exfoliation of bulk DyOCl single crystals down to seven layers is demonstrated. Our findings suggest DyOCl is a promising material playground to investigate 2D f-electron magnetism and spintronic applications at the nanoscale.

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