Vibrational strong coupling influences product selectivity in a model for post-transition-state bifurcation reactions

In this study, we explore the possibility of modulating product selectivity (branching ratios) in post-transition-state bifurcation reactions via vibrational strong coupling (VSC) to an optical cavity. Detailed classical and quantum dynamical calculations on a model potential reveal that the branching ratio can be enhanced by nearly a factor of two under VSC conditions. Interestingly, upon altering the shape of the potential, we find a switch in the cavity frequency at which maximum enhancement in selectivity is observed. Apart from emphasizing the role of both cavity-system and intramolecular energy transfer to the observed enhancements, we highlight the complexity of the VSC mechanism in terms of the choice of the cavity frequency vis-à-vis the various molecular mode frequencies. Our work shows that, in principle, cavity quantum electrodynamics can reshape dynamical outcomes in reactions with complex potential energy landscapes.

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Publication Details

Journal
The Journal of Chemical Physics
Published
2026-10-08
DOI
https://doi.org/10.1063/5.0353664
Primary Topic
Strong Light-Matter Interactions
Type
article
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article

Vibrational strong coupling influences product selectivity in a model for post-transition-state bifurcation reactions

Subhadip Mondal, Srihari Keshavamurthy, Atul Kumar
The Journal of Chemical Physics
Strong Light-Matter Interactions
article

Vibrational strong coupling influences product selectivity in a model for post-transition-state bifurcation reactions

Subhadip Mondal, Srihari Keshavamurthy, Atul Kumar
article en

Abstract

In this study, we explore the possibility of modulating product selectivity (branching ratios) in post-transition-state bifurcation reactions via vibrational strong coupling (VSC) to an optical cavity. Detailed classical and quantum dynamical calculations on a model potential reveal that the branching ratio can be enhanced by nearly a factor of two under VSC conditions. Interestingly, upon altering the shape of the potential, we find a switch in the cavity frequency at which maximum enhancement in selectivity is observed. Apart from emphasizing the role of both cavity-system and intramolecular energy transfer to the observed enhancements, we highlight the complexity of the VSC mechanism in terms of the choice of the cavity frequency vis-à-vis the various molecular mode frequencies. Our work shows that, in principle, cavity quantum electrodynamics can reshape dynamical outcomes in reactions with complex potential energy landscapes.

The Journal of Chemical PhysicsVol. 165(14)
Indian Institute of Technology Kanpur (IN)
Openalex Percentile: Top 82%
Strong Light-Matter Interactions
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Vibrational strong coupling influences product selectivity in a model for post-transition-state bifurcation reactions — Subhadip Mondal, Srihari Keshavamurthy, et al. · The Journal of Chemical Physics (2026) | TGRS Research Map | TGRS