Magnetic phase transition of monolayer RuCl<sub>3</sub> induced by optical and electrostatic unipolar doping

POSTER

Abstract

RuCl3 is a layered material showing signatures of a quantum spin liquid and strong magnetic frustration. Based on first-principles calculations, we predict that electrostatic doping with either electrons or holes and optical doping can both cause a phase transition of free-standing monolayer RuCl3 from the spin-liquid phase to stable ferromagnetic ordering with a moderate carrier/e-h density, achievable with current experimental techniques. Increasing the electron-hole pair density by optical doping can further enhance ferromagnetism and also increases the Curie temperature significantly. The mechanisms for driving the magnetic phase transition of monolayer RuCl3 are discussed based on orbital magnetism and itinerant magnetism. Our prediction of optically driving 2D ferromagnetism offers the possibility of non-contact tunability for exploring new physics and spintronic applications.

*Work at Texas is supported by a subaward from the Center for Computational Study of Excited-State Phenomena in Energy Materials, which is funded by the U.S. DOE under Contract No. DE-AC02-05CH11231. Work at St. Louis is supported by the National Science Foundation (NSF) CAREER Grant No. DMR-1455346, the Air Force Office of Scientific Research (AFOSR) grant No. FA9550-17-1-0304, and NSF DMR-1810305.

Presenters

  • Weiwei Gao

    • University of Texas at Austin

Authors

  • Weiwei Gao

    • University of Texas at Austin
  • Yingzhen Tian

    • Washington University in St. Louis
  • Erik Henriksen

    • Washington University, St. Louis
    • Washington University in St. Louis
    • Physics, Washington University in St. Louis
  • James Chelikowsky

    • University of Texas at Austin
    • Department of Physics, University of Texas at Austin
  • Li Yang

    • Washington University in St. Louis
    • Washington University, St. Louis