Polariton response in the presence of Brownian dissipation from molecular vibrations
Kansanen, K. S. U., Toppari, J. J., & Heikkilä, T. T. (2021). Polariton response in the presence of Brownian dissipation from molecular vibrations. Journal of Chemical Physics, 154(4), Article 044108. https://doi.org/10.1063/5.0036905
Julkaistu sarjassa
Journal of Chemical PhysicsPäivämäärä
2021Tekijänoikeudet
© 2021 Author(s).
We study the elastic response of a stationarily driven system of a cavity field strongly coupled with molecular excitons, taking into account the main dissipation channels due to the finite cavity linewidth and molecular vibrations. We show that the frequently used coupled oscillator model fails in describing this response especially due to the non-Lorentzian dissipation of the molecules to their vibrations. Signatures of this failure are the temperature dependent minimum point of the polariton peak splitting, the uneven polariton peak height at the minimum splitting, and the asymmetric shape of the polariton peaks even at the experimentally accessed “zero-detuning” point. Using a rather generic yet representative model of molecular vibrations, we predict the polariton response in various conditions, depending on the temperature, molecular Stokes shift and vibration frequencies, and the size of the Rabi splitting. Our results can be used as a sanity check of the experiments trying to “prove” results originating from strong coupling, such as vacuum-enhanced chemical reaction rate.
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Julkaisija
American Institute of PhysicsISSN Hae Julkaisufoorumista
0021-9606Julkaisu tutkimustietojärjestelmässä
https://converis.jyu.fi/converis/portal/detail/Publication/51359245
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Rahoittaja(t)
Suomen AkatemiaRahoitusohjelmat(t)
Akatemiahanke, SALisätietoja rahoituksesta
K.S.U.K. acknowledges the financial support of the Magnus Ehrnrooth foundation. This work was supported by the Academy of Finland projects HYNEQ (Grant No. 317118) and ManipuLight (Grant No. 323995).Lisenssi
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