Thermalization rate of polaritons in strongly-coupled molecular systems

Author:

Tereshchenkov Evgeny A.123,Panyukov Ivan V.12,Misko Mikhail2,Shishkov Vladislav Y.12ORCID,Andrianov Evgeny S.12,Zasedatelev Anton V.4ORCID

Affiliation:

1. 285011 Dukhov Research Institute of Automatics (VNIIA) , 22 Sushchevskaya , Moscow 127055 , Russia

2. 65014 Moscow Institute of Physics and Technology , 9 Institutskiy Pereulok , Dolgoprudny 141700 , Moscow Region , Russia

3. Institute for Theoretical and Applied Electromagnetics , 13 Izhorskaya , Moscow 125412 , Russia

4. Vienna Center for Quantum Science and Technology (VCQ), Faculty of Physics, University of Vienna , Boltzmanngasse 5, 1090 Vienna , Austria

Abstract

Abstract Polariton thermalization is a key process in achieving light–matter Bose–Einstein condensation, spanning from solid-state semiconductor microcavities at cryogenic temperatures to surface plasmon nanocavities with molecules at room temperature. Originated from the matter component of polariton states, the microscopic mechanisms of thermalization are closely tied to specific material properties. In this work, we investigate polariton thermalization in strongly-coupled molecular systems. We develop a microscopic theory addressing polariton thermalization through electron-phonon interactions (known as exciton-vibration coupling) with low-energy molecular vibrations. This theory presents a simple analytical method to calculate the temperature-dependent polariton thermalization rate, utilizing experimentally accessible spectral properties of bare molecules, such as the Stokes shift and temperature-dependent linewidth of photoluminescence, in conjunction with well-known parameters of optical cavities. Our findings demonstrate qualitative agreement with recent experimental reports of nonequilibrium polariton condensation in both ground and excited states, and explain the thermalization bottleneck effect observed at low temperatures. This study showcases the significance of vibrational degrees of freedom in polariton condensation and offers practical guidance for future experiments, including the selection of suitable material systems and cavity designs.

Funder

H2020 Marie Skłodowska-Curie Actions

Russian Science Foundation

Publisher

Walter de Gruyter GmbH

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