Engineering dipole-dipole couplings for enhanced cooperative light-matter interactions
Abstract
Cooperative optical effects are enabled and controlled by interactions between molecular dipoles, meaning that their mutual orientation is of paramount importance to, for example, superabsorbing light-harvesting antennas. Here we show how to move beyond the possibilities of simple geometric tailoring, demonstrating how a metallic sphere placed within a ring of parallel dipoles engineers an effective Hamiltonian that generates "guide-sliding" states within the ring system. This allows steady-state superabsorption in noisy room temperature environments, outperforming previous designs while being significantly simpler to implement. As exemplified by this showcase, our approach represents a powerful design paradigm for tailoring cooperative light-matter effects in molecular structures that extends beyond superabsorbing systems, to a huge array of quantum energy transport systems.
Cite
@article{arxiv.2410.08940,
title = {Engineering dipole-dipole couplings for enhanced cooperative light-matter interactions},
author = {Adam Burgess and Madeline C. Waller and Erik M. Gauger and Robert Bennett},
journal= {arXiv preprint arXiv:2410.08940},
year = {2025}
}
Comments
Accepted for publication in Physical Review Letters