Ultrafast dynamics of CN radical reactions with chloroform solvent under vibrational strong coupling
arXiv:2307.04875 · doi:10.1063/5.0167410
Abstract
Polariton chemistry may provide a new means to control molecular reactivity, permitting remote, reversible modification of reaction energetics, kinetics, and product yields. A considerable body of experimental and theoretical work has already demonstrated that strong coupling between a molecular vibrational mode and the confined electromagnetic field of an optical cavity can alter chemical reactivity without external illumination. However, the mechanisms underlying cavity-altered chemistry remain unclear in large part because the experimental systems examined previously are too complex for detailed analysis of their reaction dynamics. Here, we experimentally investigate photolysis-induced reactions of cyanide (CN) radicals with strongly-coupled chloroform (CHCl) solvent molecules and examine the intracavity rates of photofragment recombination, solvent complexation, and hydrogen abstraction. We use a microfluidic optical cavity fitted with dichroic mirrors to facilitate vibrational strong coupling (VSC) of the C-H stretching mode of CHCl while simultaneously permitting optical access at visible wavelengths. Ultrafast transient absorption experiments performed with cavities tuned on- and off-resonance reveal that VSC of the CHCl C-H stretching transition does not significantly modify any measured rate constants, including those associated with the hydrogen abstraction reaction. This work represents, to the best of our knowledge, the first experimental study of an elementary bimolecular reaction under VSC. We discuss how the conspicuous absence of cavity-altered effects in this system may provide insights into the mechanisms of modified ground state reactivity under VSC and help bridge the divide between experimental results and theoretical predictions in vibrational polariton chemistry.
References in corpus (10)
- Molecular polaritonics: Chemical Dynamics under strong Light-Matter Coupling
- Theoretical Challenges in Polaritonic Chemistry
- Catalysis by Dark States in Vibropolaritonic Chemistry
- Swinging between shine and shadow: Theoretical advances on thermally-activated vibropolaritonic chemistry (a perspective)
- Theory of Vibrational Polariton Chemistry in the Collective Coupling Regime
- Rovibrational Polaritons in Gas-Phase Methane
- Cavity-Altered Thermal Isomerization Rates and Dynamical Resonant Localization in Vibro-Polaritonic Chemistry
- Nonequilibrium effects of cavity leakage and vibrational dissipation in thermally-activated polariton chemistry
- QM/MM Modeling of Vibrational Polariton Induced Energy Transfer and Chemical Dynamics
- Dissociation dynamics of a diatomic molecule in an optical cavity
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- A Cavity-Enhanced Spectroscopist's Lens on Molecular Polaritons
- On-the-Fly Cavity-Molecular Dynamics of Vibrational Polaritons
- Direct readout of excited state lifetimes in chlorin chromophores under electronic strong coupling
- Ultrafast optical modulation of vibrational strong coupling in ReCl(CO)(2,2-bipyridine)