• Philipp Nagler
  • Mariana V. Ballottin
  • Anatolie A. Mitioglu
  • Mikhail V. Durnev
  • Takashi Taniguchi
  • Kenji Watanabe
  • Alexey Chernikov
  • Christian Schüller
  • Mikhail M. Glazov
  • Peter C.M. Christianen
  • Tobias Korn

Atomically thin semiconductors provide an ideal testbed to investigate the physics of Coulomb-bound many-body states. We shed light on the intricate structure of such complexes by studying the magnetic-field-induced splitting of biexcitons in monolayer WS2 using polarization-resolved photoluminescence spectroscopy in out-of-plane magnetic fields up to 30 T. The observed g factor of the biexciton amounts to about -3.9, closely matching the g factor of the neutral exciton. The biexciton emission shows an inverted circular field-induced polarization upon linearly polarized excitation; i.e., it exhibits preferential emission from the high-energy peak in a magnetic field. This phenomenon is explained by taking into account the hybrid configuration of the biexciton constituents in momentum space and their respective energetic behavior in magnetic fields. Our findings reveal the critical role of dark excitons in the composition of this many-body state.

Original languageEnglish
Article number057402
Number of pages6
JournalPhysical Review Letters
Volume121
Issue number5
DOIs
StatePublished - 2 Aug 2018

    Scopus subject areas

  • Physics and Astronomy(all)

    Research areas

  • METAL DICHALCOGENIDE SEMICONDUCTOR, HIGH MAGNETIC-FIELDS, TEMPERATURE-DEPENDENCE, WSE2, LAYER, MOSE2

ID: 36289640