Abstract
Most photochemistry occurs in the regime of weak light-matter coupling, in which a molecule absorbs a photon and then performs pho-tochemistry from its excited state. In the strong coupling regime, enhanced light-matter interactions between an optical field and multiple molecules lead to collective hybrid light-matter states called polaritons. This strong coupling leads to fundamental changes in the nature of the excited states including multi-molecule delocalized excitations, modified potential energy surfaces, and dramatically altered energy levels relative to non-coupled molecules. The effect of strong light-matter coupling on covalent photochemistry has not been well ex-plored. Photoswitches undergo reversible intramolecular photoreactions that can be readily monitored spectroscopically. In this work, we study the effect of strong-light matter coupling on the kinetics of photoswitching within optical cavities. Reproducing prior experiments, strong coupling causes decelerated photoswitching in spiropyran/merocyanine photoswitches. Fulgide photoswitches, however, show the opposite effect, with strong coupling accelerating photoswitching. While modified merocyanine switching can be explained by changes in radiative decay rates, modifications of fulgide switching kinetics suggest direct changes to excited-state reaction kinetics.
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