Correlated exciton physics in strongly coupled electron-hole bilayers

ORAL

Abstract

The interplay between attractive and repulsive Coulomb interactions can stabilize a wide variety of quantum multiparticle composites and rich quantum phases. Analogous to atoms, ions and molecules formed by electrons and nuclei, electrons and holes in semiconductors can produce multiparticle states – excitons, trions, biexcitons, and mesoscopic droplets – but these are generally limited to transient excited states under photoexcitation. Here I will present our recent progress on experimental realization of thermodynamically stable exciton and trion fluids in van der Waals heterostructures. By confining a two-dimensional electron gas and a two-dimensional hole gas close to each other while remaining electrically isolated, we achieve spontaneous formation of interlayer excitons and trions in full thermal equilibrium, with tunability via electrostatic gating. Using optical spectroscopy and electrical transport measurements, we investigate thermodynamic properties of such excitons and trions based on MoSe2/hBN/WSe2 heterostructures.

Presenters

  • Ruishi Qi

    • University of California, Berkeley

Authors

  • Ruishi Qi

    • University of California, Berkeley
  • Qize Li

    • University of California, Berkeley
  • Jiahui Nie

    • University of California, Berkeley
  • Allan H MacDonald

    • University of Texas at Austin
  • feng wang

    • University of California, Berkeley