DOE OSTI · 3374247
Ab Initio Polariton Transport Dynamics with the Classical Path Approximation
Abstract
We present an ab initio framework for simulating polariton transport dynamics based on the classical path approximation (CPA). The quantum dynamics of polariton transport involves simulating many electronic degrees of freedom, making a fully ab initio dynamics simulation computationally expensive. We demonstrate that the CPA, which removes the need for excited-state nuclear gradients, is well-suited for polaritonic systems because collective light–matter coupling leads to vanishing excited-state forces. Benchmark comparisons between CPA and full evaluation of the excited-state forces show excellent agreement for polariton transport results in model light–matter systems such as polariton group velocities and mean-squared displacements. Ab initio simulations of polariton transport using CPA reproduce key physical trends that are observed in experiments with BODIPY molecules. Our work establishes the CPA as a highly efficient tool for ab initio investigations of transport and energy flow in hybrid light–matter systems.
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Chng, Benjamin X. K. [University of Rochester, NY (United States)] (ORCID:0009000113688719), Weight, Braden Michael [Los Alamos National Laboratory (LANL), Los Alamos, NM (United States)] (ORCID:0000000224413569), Mondal, M. Elious [University of Rochester, NY (United States)], Huo, Pengfei [University of Rochester, NY (United States)] (ORCID:0000000286399299). 2026-04-30. Ab Initio Polariton Transport Dynamics with the Classical Path Approximation. https://doi.org/10.1021/acs.nanolett.6c00383
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