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Continuously-tunable light-matter coupling in optical microcavities with 2D semiconductors
by
Wall, Franziska
, Mey, Oliver
, Schneider, Lorenz Maximilian
, Rahimi-Iman, Arash
in
Coupling (molecular)
/ Energy levels
/ Excitons
/ Field strength
/ Holes
/ Microcavities
/ Optical resonance
/ Organic chemistry
/ Polaritons
/ Quantum dots
/ Quantum wells
/ Room temperature
/ Splitting
/ Transition metal compounds
2019
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Continuously-tunable light-matter coupling in optical microcavities with 2D semiconductors
by
Wall, Franziska
, Mey, Oliver
, Schneider, Lorenz Maximilian
, Rahimi-Iman, Arash
in
Coupling (molecular)
/ Energy levels
/ Excitons
/ Field strength
/ Holes
/ Microcavities
/ Optical resonance
/ Organic chemistry
/ Polaritons
/ Quantum dots
/ Quantum wells
/ Room temperature
/ Splitting
/ Transition metal compounds
2019
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Do you wish to request the book?
Continuously-tunable light-matter coupling in optical microcavities with 2D semiconductors
by
Wall, Franziska
, Mey, Oliver
, Schneider, Lorenz Maximilian
, Rahimi-Iman, Arash
in
Coupling (molecular)
/ Energy levels
/ Excitons
/ Field strength
/ Holes
/ Microcavities
/ Optical resonance
/ Organic chemistry
/ Polaritons
/ Quantum dots
/ Quantum wells
/ Room temperature
/ Splitting
/ Transition metal compounds
2019
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Continuously-tunable light-matter coupling in optical microcavities with 2D semiconductors
Paper
Continuously-tunable light-matter coupling in optical microcavities with 2D semiconductors
2019
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Overview
A theoretical variation between the two distinct light-matter coupling regimes, namely weak and strong coupling, becomes uniquely feasible in open optical Fabry-Pérot microcavities with low mode volume, as discussed here. In combination with monolayers of transition-metal dichalcogenides (TMDCs) such as WS2, which exhibits a large exciton oscillator strength and binding energy, the room-temperature observation of hybrid bosonic quasiparticles, referred to as exciton-polaritons and characterized by a Rabi splitting, comes into reach. In this context, our simulations using the transfer-matrix method show how to tailor and alter the coupling strength actively by varying the relative field strength at the excitons' position - exploiting a tunable cavity length, a transparent PMMA spacer layer and angle-dependencies of optical resonances. Continuously tunable coupling for future experiments is hereby proposed, capable of real-time adjustable Rabi splitting as well as switching between the two coupling regimes. Being nearly independent of the chosen material, the suggested structure could also be used in the context of light-matter-coupling experiments with quantum dots, molecules or quantum wells. While the adjustable polariton energy levels could be utilized for polariton-chemistry or optical sensing, cavities that allow working at the exceptional point promise the exploration of topological properties of that point.
Publisher
Cornell University Library, arXiv.org
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