Resonance theory of vibrational polariton chemistry at the normal incidence

Author:

Ying Wenxiang1ORCID,Taylor Michael A. D.2ORCID,Huo Pengfei12ORCID

Affiliation:

1. Department of Chemistry , 6927 University of Rochester , 120 Trustee Road , Rochester , NY 14627 , USA

2. Hajim School of Engineering , 6927 The Institute of Optics, University of Rochester , Rochester , NY 14627 , USA

Abstract

Abstract We present a theory that explains the resonance effect of the vibrational strong coupling (VSC) modified reaction rate constant at the normal incidence of a Fabry–Pérot (FP) cavity. This analytic theory is based on a mechanistic hypothesis that cavity modes promote the transition from the ground state to the vibrational excited state of the reactant, which is the rate-limiting step of the reaction. This mechanism for a single molecule coupled to a single-mode cavity has been confirmed by numerically exact simulations in our recent work in [J. Chem. Phys. 159, 084104 (2023)]. Using Fermi’s golden rule (FGR), we formulate this rate constant for many molecules coupled to many cavity modes inside a FP microcavity. The theory provides a possible explanation for the resonance condition of the observed VSC effect and a plausible explanation of why only at the normal incident angle there is the resonance effect, whereas, for an oblique incidence, there is no apparent VSC effect for the rate constant even though both cases generate Rabi splitting and forming polariton states. On the other hand, the current theory cannot explain the collective effect when a large number of molecules are collectively coupled to the cavity, and future work is required to build a complete microscopic theory to explain all observed phenomena in VSC.

Funder

National Science Foundation

Research Corporation for Science Advancement

Publisher

Walter de Gruyter GmbH

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