4.6 Article

Dimensional crossover tuned by pressure in layered magnetic NiPS3

Journal

Publisher

SCIENCE PRESS
DOI: 10.1007/s11433-021-1727-6

Keywords

metal-insulator transition; magnetic phase transition; structural phase transition; 71; 30; +h; 75; 30; Kz; 68; 18; Fg

Funding

  1. National Key Research and Development Program of China [2016M0401503, 2018YFA0305700, 2017YFA0302904, 2020YE40711502, 20165FA0300500]
  2. National Natural Science Foundation of China [11575288, 11974387, U1932215, U1930401, 12004014, 22090041, 11774419]
  3. Frontier Sciences of the Chinese Academy of Sciences [XDB33000000, XDB25000000, QYZDBSSW-SLH013]
  4. Youth Innovation Promotion Association of Chinese Academy of Sciences [Y202003]
  5. CAS Interdisciplinary Innovation Team [JCTD-2019-01]
  6. Chinese Academy of Sciences [KJCX2-SW-A120, KJCX2-SW-NO3]

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Under pressure, layered magnetic NiPS3 undergoes a transition from insulator to metal state accompanied by the collapse of magnetic order. The interlayer interaction plays a crucial role in tuning the electronic and magnetic properties of the material.
The physical properties of most 2D materials are highly dependent on the nature of their interlayer interaction. In-depth studies of the interlayer interaction are beneficial to the understanding of the physical properties of 2D materials and permit the development of related devices. Layered magnetic NiPS3 has unique magnetic and electronic properties. The electronic band structure and corresponding magnetic state of NiPS3 are expected to be sensitive to the interlayer interaction, which can be tuned by external pressure. Here, we report an insulator-metal transition accompanied by the collapse of magnetic order during the 2D-3D structural crossover induced by hydrostatic pressure. A two-stage phase transition from a monoclinic (C2/m) to a trigonal (P31m) lattice is identified via ab initio simulations and confirmed via high-pressure X-ray diffraction and Raman scattering; this transition corresponds to a layer-by-layer slip mechanism along the a-axis. Temperature-dependent resistance measurements and room temperature infrared spectroscopy under different pressures demonstrate that the insulator-metal transition and the collapse of the magnetic order occur at similar to 20 GPa, which is confirmed by low-temperature Raman scattering measurements and theoretical calculations. These results establish a strong correlation between the structural change, electric transport, and magnetic phase transition and expand our understanding of layered magnetic materials. Moreover, the structural transition caused by the interlayer displacement has significance for designing similar devices at ambient pressure.

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