English

Atomically thin mirrors made of monolayer semiconductors

Mesoscale and Nanoscale Physics 2018-01-24 v1 Materials Science Applied Physics Optics

Abstract

Transition metal dichalcogenide monolayers are promising candidates for exploring new electronic and optical phenomena and for realizing atomically thin optoelectronic devices. They host tightly bound electron-hole pairs (excitons) that can be efficiently excited by resonant light fields. Here, we demonstrate that a single monolayer of molybdenum diselenide (MoSe2) can dramatically modify light transmission near the excitonic resonance, acting as an electrically switchable mirror that reflects up to 85% of incident light at cryogenic temperatures. This high reflectance is a direct consequence of the excellent coherence properties of excitons in this atomically thin semiconductor, encapsulated by hexagonal boron nitride. Furthermore, we show that the MoSe2 monolayer exhibits power- and wavelength-dependent nonlinearities that stem from exciton-based lattice heating in the case of continuous-wave excitation and exciton-exciton interactions when fast, pulsed laser excitation is used. These observations open up new possibilities for studying quantum nonlinear optical phenomena and topological photonics, and for miniaturizing optical devices.

Keywords

Cite

@article{arxiv.1705.07245,
  title  = {Atomically thin mirrors made of monolayer semiconductors},
  author = {Giovanni Scuri and You Zhou and Alexander A. High and Dominik S. Wild and Chi Shu and Kristiaan De Greve and Luis A. Jauregui and Takashi Taniguchi and Kenji Watanabe and Philip Kim and Mikhail D. Lukin and Hongkun Park},
  journal= {arXiv preprint arXiv:1705.07245},
  year   = {2018}
}

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