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Homogeneous Broadening of Excitons in Bilayer MoSe<sub>2</sub>

ORAL

Abstract

In transition metal dichalcogenides (TMDs), the electronic band structure shifts dramatically when the thickness of a sample is reduced from bilayer to monolayer, producing a concurrent change in their optical properties. Exciton resonances form at the K points on the Brillouin zone boundary in both the monolayers and bilayers, however, we find that their quantum dynamics differ drastically. We perform two-dimensional electronic coherent spectroscopy (2DECS) on a MoSe2 monolayer and bilayer to investigate the quantum decoherence (homogeneous linewidth) of various exciton resonances. We first identify the A-exciton and trion resonances in the monolayer. The bilayer A-exciton is shifted to lower energy, consistent with previous studies. Despite the presence of an inhomogeneous broadening, we were able to extract the homogeneous linewidth using 2DECS. Most notably, the homogeneous linewidth of the bilayer exciton exceeds that of the monolayer exciton and trion significantly. Because the band structure of a MoSe2 bilayer evolves to an indirect bandgap, we expect that scattering with additional interlayer phonon modes would lead to additional dephasing, consistent with the increased homogeneous linewidths observed.

Presenters

  • Kevin Sampson

    Department of Physics, University of Texas at Austin

Authors

  • Kevin Sampson

    Department of Physics, University of Texas at Austin

  • Sophia Helmrich

    Department of Optics and Atomic Physics, Technische Universität Berlin

  • Carter Young

    Department of Physics, University of Texas at Austin, University of Texas at Austin, Department of Physics, Complex Quantum Systems, and Texas Materials Institutes, University of Texas at Austin

  • Nina Owschimikow

    Department of Optics and Atomic Physics, Technische Universität Berlin

  • Jacob Embley

    Department of Physics, University of Texas at Austin

  • Kai Hao

    Department of Physics, University of Texas at Austin, University of Chicago

  • Ulrike Woggon

    Department of Optics and Atomic Physics, Technische Universität Berlin

  • Xiaoqin (Elaine) Li

    Physics, University of Texas at Austin, Department of Physics, The University of Texas at Austin, Department of Physics, University of Texas at Austin, University of Texas at Austin, Department of Physics, Complex Quantum Systems, and Texas Materials Institutes, University of Texas at Austin