Monolayer MoSe2: A candidate for room temperature polaritonics
arXiv:1603.05562 · doi:10.1088/2053-1583/4/1/015006
Abstract
Monolayered MoSe2 is a promising new material to investigate advanced light-matter coupling as it hosts stable and robust excitons with comparably narrow optical resonances. In this work, we investigate the evolution of the lowest lying excitonic transition, the so-called A-valley exciton, with temperature. We find a strong, phonon-induced temperature broadening of the resonance, and more importantly, a reduction of the oscillator strength for increased temperatures. Based on these experimentally extracted, temperature dependent parameters, we apply a coupled oscillator model to elucidate the possibility to observe the strong coupling regime between the A-exciton and a microcavity resonance in three prototypical photonic architectures with varying mode volumes. We find that the formation of exciton-polaritons up to ambient conditions in short, monolithic dielectric and Tamm-based structures seems feasible. In contrast, a temperature-induced transition into the weak coupling regime can be expected for structures with extended effective cavity length. Based on these findings, we calculate and draw the phase diagram of polariton Bosonic condensation in a MoSe2 cavity.
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Cited by in corpus (26)
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- Exciton-exciton interaction in transition-metal dichalcogenide monolayers
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- Exciton states in monolayer MoSe2 and MoTe2 probed by upconversion spectroscopy
- Strong coupling between Tamm plasmon polariton and two dimensional semiconductor excitons
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- The interplay between excitons and trions in a monolayer of MoSe
- Millimeter-scale layered MoSe2 grown on sapphire and evidence for negative magnetoresistance
- Nonlinear interactions of dipolar excitons and polaritons in MoS2 bilayers
- Observation of bright and dark exciton transitions in monolayer MoSe2 by photocurrent spectroscopy
- Tunable optical nonlinearity for TMD polaritons dressed by a Fermi sea
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- Exciton routing in the heterostructure of TMD and paraelectrics
- Microscopic modelling of exciton-polariton diffusion coefficients in atomically thin semiconductors
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- Nonlocal Exciton-Photon Interactions in Hybrid High-Q Beam Nanocavities with Encapsulated MoS Monolayers
- Multivalley engineering in semiconductor microcavities
- Influence of direct deposition of dielectric materials on the optical response of monolayer WS
- Microscopic theory of nonlinear phase space filling in polaritonic lattices
- Fabrication of high-quality PMMA/SiO spaced planar microcavities for strong coupling of light with monolayer WS excitons
- Robust polaritons in magnetic monolayers of CrI3
- Spin Hall effect for polaritons in a TMDC monolayer embedded in a microcavity
- Theory of nonlinear excitonic response of hybrid organic perovskites in the regime of strong light-matter coupling
- High-temperature tunable superfluidity of polaritons in Xene monolayers in an optical microcavity
- Optimal condition to probe strong coupling of two-dimensional excitons and zero-dimensional cavity modes