Related Experiment Video
Updated: Jan 20, 2026

Determination of the Excitation and Coupling Rates Between Light Emitters and Surface Plasmon Polaritons
Published on: July 21, 2018
Investigating New Reactivities Enabled by Polariton Photochemistry
1Department of Chemistry , University of Rochester , 120 Trustee Road , Rochester , New York 14627 , United States.
Abstract:
We perform quantum dynamics simulations to investigate new chemical reactivities enabled by cavity quantum electrodynamics. The quantum light-matter interactions between the molecule and the quantized radiation mode inside an optical cavity create a set of hybridized electronic-photonic states, so-called polaritons. The polaritonic states adapt the curvatures from both the ground and the excited electronic states, opening up new possibilities to control photochemical reactions by exploiting intrinsic quantum behaviors of light-matter interactions. With quantum dynamics simulations, we demonstrate that the selectivity of a model photoisomerization reaction can be controlled by tuning the photon frequency of the cavity mode or the light-matter coupling strength, providing new ways to manipulate chemical reactions via the light-matter interaction. We further investigate collective quantum effects enabled by coupling the quantized radiation mode to multiple molecules. Our results suggest that in the resonance case, a photon is recycled among molecules to enable multiple excited state reactions, thus effectively functioning as a catalyst. In the nonresonance case, molecules emit and absorb virtual photons to initiate excited state reactions through fundamental quantum electrodynamics processes. These results from quantum dynamics simulations reveal basic principles of polariton photochemistry as well as promising reactivities that take advantage of intrinsic quantum behaviors of photons.
Related Concept Videos
07:39Determination of the Excitation and Coupling Rates Between Light Emitters and Surface Plasmon Polaritons
08:36An Atmospheric Pressure Plasma Setup to Investigate the Reactive Species Formation
Detecting Reactive Oxygen Species
Cross-reactivity
Reactivity of Enols
06:40In Vivo Imaging of Reactive Oxygen Species in a Murine Wound Model

