Strong light-matter coupling in two-dimensional atomic crystals
arXiv:1406.4826 · doi:10.1038/nphoton.2014.304
Abstract
Two dimensional (2D) atomic crystals of graphene, and transition metal dichalcogenides have emerged as a class of materials that show strong light-matter interaction. This interaction can be further controlled by embedding such materials into optical microcavities. When the interaction is engineered to be stronger than the dissipation of light and matter entities, one approaches the strong coupling regime resulting in the formation of half-light half-matter bosonic quasiparticles called microcavity polaritons. Here we report the evidence of strong light-matter coupling and formation of microcavity polaritons in a two dimensional atomic crystal of molybdenum disulphide (MoS2) embedded inside a dielectric microcavity at room temperature. A Rabi splitting of 46 meV and highly directional emission is observed from the MoS2 microcavity owing to the coupling between the 2D excitons and the cavity photons. Realizing strong coupling effects at room temperature in a disorder free potential landscape is central to the development of practical polaritonic circuits and switches.
25 pages, 7 figures
References in corpus (5)
- Two Dimensional Atomic Crystals
- Valley polarization in MoS2 monolayers by optical pumping
- Synthesis of Large-Area MoS2 Atomic Layers with Chemical Vapor Deposition
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Cited by in corpus (15)
- Mixed-Dimensional van der Waals Heterostructures
- k.p theory for two-dimensional transition metal dichalcogenide semiconductors
- Photocurrent generation with two-dimensional van der Waals semiconductors
- Topological Polaritons
- Large, valley-exclusive Bloch-Siegert shift in monolayer WS2
- Electronic and optical properties of two-dimensional InSe from a DFT-parameterized tight-binding model
- Ultra-low power threshold for laser induced changes in optical properties of 2D Molybdenum dichalcogenides
- Strong exciton-photon coupling with colloidal nanoplatelets in an open microcavity
- Auger recombination of dark excitons in and monolayers
- Photonic Architectures for Equilibrium High-Temperature Bose-Einstein Condensation in Dichalcogenide Monolayers
- Electroabsorption in MoS
- Room-temperature vacuum Rabi splitting with active control in two-dimensional atomic crystals
- Monolayer Excitonic Laser
- Non-linear excitation of quantum emitters in two-dimensional hexagonal boron nitride
- Approaching the Intrinsic Photoluminescence Linewidth in Transition Metal Dichalcogenide Monolayers