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Observation of bosonic condensation in a hybrid monolayer MoSe2-GaAs microcavity.

Authors :
Waldherr, Max
Lundt, Nils
Klaas, Martin
Betzold, Simon
Wurdack, Matthias
Baumann, Vasilij
Estrecho, Eliezer
Nalitov, Anton
Cherotchenko, Evgenia
Cai, Hui
Ostrovskaya, Elena A.
Kavokin, Alexey V.
Tongay, Sefaattin
Klembt, Sebastian
Höfling, Sven
Schneider, Christian
Source :
Nature Communications; 8/16/2018, Vol. 9 Issue 1, p1-1, 1p
Publication Year :
2018

Abstract

Bosonic condensation belongs to the most intriguing phenomena in physics, and was mostly reserved for experiments with ultra-cold quantum gases. More recently, it became accessible in exciton-based solid-state systems at elevated temperatures. Here, we demonstrate bosonic condensation driven by excitons hosted in an atomically thin layer of MoSe<subscript>2</subscript>, strongly coupled to light in a solid-state resonator. The structure is operated in the regime of collective strong coupling between a Tamm-plasmon resonance, GaAs quantum well excitons, and two-dimensional excitons confined in the monolayer crystal. Polariton condensation in a monolayer crystal manifests by a superlinear increase of emission intensity from the hybrid polariton mode, its density-dependent blueshift, and a dramatic collapse of the emission linewidth, a hallmark of temporal coherence. Importantly, we observe a significant spin-polarization in the injected polariton condensate, a fingerprint for spin-valley locking in monolayer excitons. Our results pave the way towards highly nonlinear, coherent valleytronic devices and light sources. [ABSTRACT FROM AUTHOR]

Details

Language :
English
ISSN :
20411723
Volume :
9
Issue :
1
Database :
Complementary Index
Journal :
Nature Communications
Publication Type :
Academic Journal
Accession number :
131287599
Full Text :
https://doi.org/10.1038/s41467-018-05532-7