English

Accelerated Hydrogen Exchange Reaction in a Dark Cavity: A Benchmark for Bridging the Gap Between Theory and Experiment

Chemical Physics 2025-07-15 v1 Quantum Physics

Abstract

The gas-phase hydrogen exchange reaction (HER) is the most fundamental chemical process for benchmarking quantum reaction dynamics. In this Letter, we focus on controlling HER by means of strong light-matter coupling inside a resonant cavity, an approach often called polariton chemistry. In particular, we focus on the isotopic variation of HER involving collisions between molecular hydrogen H2_2 and deuterium atom D, i.e., H2_2+D\toHD+H. We find that the asymmetry introduced by the different isotopes, despite being small, enables strong cavity-induced modifications of reaction rates. Outside of the cavity the reaction is as usual D+H2{_2}\toDH+H. However, inside the cavity another type of reactions take place where D+H2_2\toDH+H+Ephoton_{photon}, where Ephoton_{photon}=ωcav\hbar\omega_{cav}. Our results show that HER is an ideal platform to make a significant step toward closing the gap between theory and experiment in polariton chemistry.

Keywords

Cite

@article{arxiv.2507.09695,
  title  = {Accelerated Hydrogen Exchange Reaction in a Dark Cavity: A Benchmark for Bridging the Gap Between Theory and Experiment},
  author = {Victor Berenstein and Giacomo Valtolina and Zohar Amitay and Nimrod Moiseyev},
  journal= {arXiv preprint arXiv:2507.09695},
  year   = {2025}
}