Direct visualization of hybridized excitons in twisted WS<sub>2</sub>/MoSe<sub>2</sub> heterobilayers

ORAL

Abstract

Twisted heterobilayers of transition metal dichalcogenides (TMD) provide a unique and tunable platform to study properties of excitons. Particularly, in WS2/MoSe2 heterostructure systems, the conduction band minimum of two layers are nearly degenerate, leading to hybridization between intralayer excitons and interlayer excitons. Optical measurements including photoluminescence and reflectance spectra have shown emerging temperature- and twist-angle-dependence. To further understand the formation and evolution of hybridized excitons, we performed time-resolved angle-resolved photoemission spectroscopy (TR-ARPES) to directly visualize energetics and dynamics of exciton states in momentum space. We also characterized dynamics of samples with different twist angles at various temperature and fluence conditions. Our study has shown that moiré superlattice and band alignment play significant roles in the ultrafast exciton dynamics.

*This work was supported by the DOE (DE-SC0022004) and AFOSR (FA9550-20-1-0259). Z.L. and W.Z. were supported by AFOSR/MURI project 2DMagic (FA9550-19-1-0390) and DOE (DE-SC0016379), Z.W. was supported by NSF-GRFP.

Presenters

  • Ziling Li

    • The Ohio State University

Authors

  • Ziling Li

    • The Ohio State University
  • Zachary H Withers

    • Stony Brook University
  • Sergey Chernov

    • Stony Brook University
  • Jin Bakalis

    • Stony Brook University (SUNY)
  • Wenyi Zhou

    • The Ohio State University
  • Shuyu Cheng

    • The Ohio State University
    • The Ohio State University, Department of Physics
  • Victor C Lee

    • Yale University
  • BOWEN HOU

    • Yale University
  • Jiaxuan Guo

    • Fudan University
  • Diana Y Qiu

    • Yale University
  • Roland K Kawakami

    • The Ohio State University
  • Thomas K Allison

    • Stony Brook University (SUNY)
  • Alice Kunin

    • Stony Brook University (SUNY)