The effect of an optical cavity on diabatic tunneling in an ensemble of symmetric double-well systems
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234111_1_5.0305951.pdf
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Published version
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3.77 MB
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a1d3d211c157813c8e122a8a6e5c8ebe
Author(s) •
Pollak, Eli
Cao, Jianshu
Date Issued
December 17, 2025
Journal
The Journal of Chemical Physics
Publisher
AIP Publishing
Citation
Eli Pollak, Jianshu Cao; The effect of an optical cavity on diabatic tunneling in an ensemble of symmetric double-well systems. J. Chem. Phys. 21 December 2025; 163 (23): 234111.
Version
Final published version
Abstract
The vacuum field of an optical cavity can potentially modify chemical reactivity and other dynamical properties via vibrational strong coupling (VSC). This intriguing finding has inspired numerous studies, but the underlying mechanisms remain unresolved. While many theoretical efforts focus on solvent or nuclear fluctuations, the tunneling overlap in non-adiabatic processes is usually assumed unperturbed by the cavity field. This paper presents a rigorous calculation of the tunneling splitting and associated ground-state shift resulting from the non-adiabatic coupling between two degenerate, harmonic diabatic surfaces in the ground vibrational state manifold under VSC. Based on this calculation, the tunneling splitting is suppressed by the cavity field for a single-molecule or a few-molecule system, but this cavity-induced effect is neither resonant nor cooperative and vanishes in the thermodynamic limit. This prediction demonstrates the many facets of VSC-induced phenomena and sheds new light on cavity-modified non-adiabatic processes, including charge transfer, Förster resonance energy transfer, energy relaxation, and conical intersection.
MIT Department
Massachusetts Institute of Technology. Department of Chemistry
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Creative Commons Attribution
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DOI of Published Version
10.1063/5.0305951