Exciton-polaritons in semiconductor microcavities constitute the archetypal realization of a quantum fluid of light. Under coherent optical drive, remarkable effects such as superfluidity, dark solitons or the nucleation of vortices have been observed, and can be all understood as specific manifestations of the condensate collective excitations. In this work, we perform a Brillouin scattering experiment to measure their dispersion relation omega(k) directly. The results, such as a speed of sound which is apparently twice too low, cannot be explained upon considering the polariton condensate alone. In a combined theoretical and experimental analysis, we demonstrate that the presence of an excitonic reservoir alongside the polariton condensate has a dramatic influence on the characteristics of the quantum fluid, and explains our measurement quantitatively. This work clarifies the role of such a reservoir in polariton quantum hydrodynamics. It also provides an unambiguous tool to determine the condensateto-reservoir fraction in the quantum fluid, and sets an accurate framework to approach ideas for polariton-based quantum-optical applications.

Dispersion relation of the collective excitations in a resonantly driven polariton fluid

Amelio Ivan;Carusotto Iacopo;
2019

Abstract

Exciton-polaritons in semiconductor microcavities constitute the archetypal realization of a quantum fluid of light. Under coherent optical drive, remarkable effects such as superfluidity, dark solitons or the nucleation of vortices have been observed, and can be all understood as specific manifestations of the condensate collective excitations. In this work, we perform a Brillouin scattering experiment to measure their dispersion relation omega(k) directly. The results, such as a speed of sound which is apparently twice too low, cannot be explained upon considering the polariton condensate alone. In a combined theoretical and experimental analysis, we demonstrate that the presence of an excitonic reservoir alongside the polariton condensate has a dramatic influence on the characteristics of the quantum fluid, and explains our measurement quantitatively. This work clarifies the role of such a reservoir in polariton quantum hydrodynamics. It also provides an unambiguous tool to determine the condensateto-reservoir fraction in the quantum fluid, and sets an accurate framework to approach ideas for polariton-based quantum-optical applications.
2019
Istituto Nazionale di Ottica - INO
Inglese
10
1
3869
3869
8
http://www.scopus.com/inward/record.url?eid=2-s2.0-85071566173&partnerID=q2rCbXpz
Sì, ma tipo non specificato
Bose-Einstein condensation; quantized vortices; liquid-helium; solitons
The authors wish to thank M. Wouters for crucial discussions in the early stage of this project. P.S, J.B., A.A.G., and M.R. acknowledge funding from the french ANR contract "QFL" (ANR-16-CE30-0021). I.C., J.B., A.L., and A.A. acknowledge funding from the H2020-FETFLAG-2018-2020 project " PhoQuS", (nb 820392). A.M. acknowledges funding from the french ANR contract " SuperRing" (ANR-15-CE30-0012). J.G.R. acknowledges the "ETIUDA" program from the polish NCN.
9
info:eu-repo/semantics/article
262
Stepanov, Petr; Amelio, Ivan; Rousset, Jeanguy; Bloch, Jacqueline; Lemaitre, Aristide; Amo, Alberto; Minguzzi, Anna; Carusotto, Iacopo; Richard, Maxim...espandi
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Utilizza questo identificativo per citare o creare un link a questo documento: https://hdl.handle.net/20.500.14243/379299
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