Room-temperature optomechanics with light-matter condensates

Fuente: arXiv
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Main Authors: Shishkov, Vladislav Yu., Andrianov, Evgeny S., Zasedatelev, Anton V.
Format: Preprint
Published: 2024
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author Shishkov, Vladislav Yu.
Andrianov, Evgeny S.
Zasedatelev, Anton V.
author_facet Shishkov, Vladislav Yu.
Andrianov, Evgeny S.
Zasedatelev, Anton V.
contents In this work, we develop an optomechanical formalism for macroscopic quantum states in exciton-polariton systems with strong exciton-phonon interactions. We show that polariton optomechanical interactions induce dynamical backaction, resulting in dispersive and dissipative shifts in the complex vibrational response functions. Unlike conventional optomechanical systems, polariton optomechanics features high-dimensionality and phase-space confinement due to the dispersion relations of exciton-polaritons. Consequently, vibrational modes exhibit effective positive or negative mass depending on the detuning parameter, and are capable for the nonequilibrium vibrational Bose-Einstein condensation under the resonant conditions [arXiv:2309.08498]. We demonstrate the potential for vibrational control of polariton condensates at room temperature.
format Preprint
id arxiv_https___arxiv_org_abs_2405_00195
institution arXiv
publishDate 2024
record_format arxiv
spellingShingle Room-temperature optomechanics with light-matter condensates
Shishkov, Vladislav Yu.
Andrianov, Evgeny S.
Zasedatelev, Anton V.
Quantum Gases
In this work, we develop an optomechanical formalism for macroscopic quantum states in exciton-polariton systems with strong exciton-phonon interactions. We show that polariton optomechanical interactions induce dynamical backaction, resulting in dispersive and dissipative shifts in the complex vibrational response functions. Unlike conventional optomechanical systems, polariton optomechanics features high-dimensionality and phase-space confinement due to the dispersion relations of exciton-polaritons. Consequently, vibrational modes exhibit effective positive or negative mass depending on the detuning parameter, and are capable for the nonequilibrium vibrational Bose-Einstein condensation under the resonant conditions [arXiv:2309.08498]. We demonstrate the potential for vibrational control of polariton condensates at room temperature.
title Room-temperature optomechanics with light-matter condensates
topic Quantum Gases
url https://arxiv.org/abs/2405.00195