English

Collective Rabi-driven vibrational activation in molecular polaritons

Computational Physics 2026-04-08 v3

Abstract

Molecular polaritons arise from electronic or vibrational strong coupling (ESC and VSC) with confined electromagnetic fields. While these have been widely studied, the influence of electron-nuclear dynamics in driven cavities remains largely unknown. Here, we report a previously unrecognized mechanism of vibrational activation that emerges under collective ESC in driven optical cavities. Using simulations that self-consistently combine Maxwell's equations with quantum molecular dynamics, we show that collective electronic Rabi oscillations coherently drive nuclear motion. This effect is captured using both vibrational wave-packet dynamics in a minimal two-level model and atomistic simulations based on time-dependent density-functional tight-binding theory. Vibrational activation depends non-monotonically on the Rabi frequency and is maximized when the collective polaritonic splitting resonates with a molecular vibrational mode. The mechanism exhibits features consistent with a stimulated Raman-like relaxation mechanism. Our predictions are robust under realistic cavity conditions and provide the conditions in which they could be verified experimentally.

Keywords

Cite

@article{arxiv.2601.16299,
  title  = {Collective Rabi-driven vibrational activation in molecular polaritons},
  author = {Carlos M. Bustamante and Franco P. Bonafé and Richard Richardson and Michael Ruggenthaler and Wenxiang Ying and Abraham Nitzan and Maxim Sukharev and Angel Rubio},
  journal= {arXiv preprint arXiv:2601.16299},
  year   = {2026}
}

Comments

13 pages, 7 pages of SI, 12 figures