Photon correlation time-asymmetry and dynamical coherence in multichromophoric systems
Abstract
We theoretically investigate polarization-filtered two-photon correlations for the light emitted by a multichromophoric system undergoing excitation transport under realistic exciton-phonon interactions, and subject to continuous incoherent illumination. We show that for a biomolecular aggregate, such as the Fenna-Matthews Olson (FMO) photosynthetic complex, time-asymmetries in the cross-correlations of photons corresponding to different polarizations can be exploited to probe both quantum coherent transport mechanisms and steady-state coherence properties, which are not witnessed by zero-delay correlations. A classical bound on correlation asymmetry is obtained, which FMO is shown to violate using exact numerical calculations. Our analysis indicates that the dominant contributions to time-asymmetry in such photon cross-correlations are population to coherence transfer for Frenkel-Exciton models. Our results therefore put forward photon correlation asymmetry as a promising approach to investigate coherent contributions to excited-stated dynamics in molecular aggregates and other many-site quantum emitters.
Cite
@article{arxiv.2404.16892,
title = {Photon correlation time-asymmetry and dynamical coherence in multichromophoric systems},
author = {Charlie Nation and Hallmann Oskar Gestsson and Alexandra Olaya-Castro},
journal= {arXiv preprint arXiv:2404.16892},
year = {2024}
}
Comments
5 + 16 pages, 3 + 9 figures