The competing roles of structural and magnetic symmetry breaking in describing gapping and then metallization in VO2

ORAL

Abstract

Structural and magnetic symmetry breakings could lead to insulating phases in open d-shell transition metal oxides that could otherwise stay metallic. Here, we find from density functional theory supercell (as well as molecular dynamics) calculations how structural symmetry breaking of V-V dimerization and magnetic spin symmetry breaking shape the insulator-to-metal transition in VO2. The V-V dimerization tends to remove the magnetic moments of the dimerized V4+ ions whose occupied d states form a spin-singlet, and the magnetism tends to weaken the V-V dimerization. In the high-temperature metallic rutile phase of VO2, the V-V dimers are uncoupled leading to unavoidable local magnetic moments on the V4+ ions with residual spin splitting, according to DFT supercell calculations. This type of competitive interaction between the structural and magnetic symmetry breakings could deepen the understanding of the insulator-to-metal transition mechanism in open d-shell transition metal oxides and be utilized to realize a type of structural-magnetic logic devices.

*This work was supported by the DMREF program of the U.S. National Science Foundation through Grant No. DMREF-1921949 and the U.S. Department of Energy, Office of Science, Basic Energy Sciences, Materials Sciences and Engineering Division, under Grant No. DE-SC0010467.

Presenters

  • Xiuwen Zhang

    • University of Colorado Boulder

Authors

  • Xiuwen Zhang

    • University of Colorado Boulder
  • Xingang Zhao

    • University of Colorado, Boulder
  • Oleksandr I Malyi

    • ENSEMBLE3 - Centre of Excellence
    • Centre of Excellence ENSEMBLE3 Sp. z o. o
  • Linding Yuan

    • University of Colorado, Boulder
  • Alex Zunger

    • University of Colorado, Boulder