High-Temperature Fractional Quantum Hall State in Floquet-Kagome Flat Band

ORAL

Abstract

Fractional quantum Hall effect (FQHE) has been predicted in topological flat band (FB) by single-particle band structure combined with phenomenological theory or solution of many-body lattice Hamiltonian with fuzzy parameters. A long-standing roadblock towards realization of FB-FQHE is lacking the many-body solution of specific materials under realistic conditions. Here, we demonstrate a combined study of single-particle Floquet band theory with exact diagonalization (ED) of many-body Hamiltonian. We show that a time-periodic circularly polarized laser inverts the sign of second-nearest-neighbor hopping in a Kagome lattice and enhances spin-orbit coupling in one spin channel, to produce a Floquet FB with a high flatness ratio of bandwidth over band gap, as exemplified in monolayer Pt3C36S12H12. The ED of the resultant Floquet-Kagome lattice Hamiltonian gives a one-third-filling ground state with a laser-dependent excitation gap of FQH state, up to an estimated temperature above 70 K. Our findings pave the way to explore the alluding high-temperature FB-FQHE.

*U.S. DOE-BES (Grants No. DE-FG02-04ER46148 and DE-FG02-06ER46305), National Key Research and Development Program of China (Grants No. 2020YFA0308800 and 2016YFA0300902), National Basic Research Program of China (Grant No. 2015CB921001), National Natural Science Foundation of China (Grants No. 91850120, 11774396 and 11974045), "Strategic Priority Research Program (B)" of CAS (Grant No. XDB30000000), and China Scholarship Council (Grant No. 201804910612).

Presenters

  • Hang Liu

    • Songshan Lake Materials Laboratory

Authors

  • Hang Liu

    • Songshan Lake Materials Laboratory
  • Gurjyot S Sethi

    • University of Utah
  • Donna Sheng

    • California State University, Northridge
  • Yinong Zhou

    • University of Utah
    • University of California, Irvine
  • Jia-Tao Sun

    • Beijing Institute of Technology
  • Sheng Meng

    • Institute of Physics, Chinese Academy of Sciences
  • Feng Liu

    • University of Utah