English

Non-equilibrium diffusion of dark excitons in atomically thin semiconductors

Mesoscale and Nanoscale Physics 2021-05-24 v1

Abstract

Atomically thin semiconductors provide an excellent platform to study intriguing many-particle physics of tightly-bound excitons. In particular, the properties of tungsten-based transition metal dichalcogenides are determined by a complex manifold of bright and dark exciton states. While dark excitons are known to dominate the relaxation dynamics and low-temperature photoluminescence, their impact on the spatial propagation of excitons has remained elusive. In our joint theory-experiment study, we address this intriguing regime of dark state transport by resolving the spatio-temporal exciton dynamics in hBN-encapsulated WSe2_2 monolayers after resonant excitation. We find clear evidence of an unconventional, time-dependent diffusion during the first tens of picoseconds, exhibiting strong deviation from the steady-state propagation. Dark exciton states are initially populated by phonon emission from the bright states, resulting in creation of hot excitons whose rapid expansion leads to a transient increase of the diffusion coefficient by more than one order of magnitude. These findings are relevant for both fundamental understanding of the spatio-temporal exciton dynamics in atomically thin materials as well as their technological application by enabling rapid diffusion.

Keywords

Cite

@article{arxiv.2105.10232,
  title  = {Non-equilibrium diffusion of dark excitons in atomically thin semiconductors},
  author = {Roberto Rosati and Koloman Wagner and Samuel Brem and Raül Perea-Causín and Jonas D. Ziegler and Jonas Zipfel and Takashi Taniguchi and Kenji Watanabe and Alexey Chernikov and Ermin Malic},
  journal= {arXiv preprint arXiv:2105.10232},
  year   = {2021}
}

Comments

12 pages, 4 figures, supplementary info (7 pages, 6 figures)

R2 v1 2026-06-24T02:20:00.898Z