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    Engineering atom-photon hybridization with density-modulated atomic ensembles in coupled cavities

    Carlos E. Máximo1,2,*, Romain Bachelard2, and Tobias Donner1

    • *Contact author: dumax1@gmail.com

    Phys. Rev. A 113, 053707 – Published 5 May, 2026

    DOI: https://doi.org/10.1103/rppt-2474

    Abstract

    Radiation-matter hybridization allows atoms to serve as mediators of effective interactions between light modes and, conversely, to interact among themselves via light. Here, we exploit the spatial structure of atomic ensembles to control the coupling between modes of distinct cavities, thereby reshaping the resulting atom-photon spectra. We show that extended homogeneous clouds suppress mode-mode couplings through destructive interference, whereas grated clouds can preserve them under specific Bragg conditions. This leads to mode-mode spectral subsplittings, where collectivity arises not only from the number of atoms but also from the ability to tune modes of different cavities independently. Our results establish spatially engineered atomic ensembles as a pathway to selective photon transfer between modes and precise control of many-body complexity.

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