Emergent cavity-QED dynamics along the edge of a photonic lattice

Abstract We investigate qubits coupled to the boundary of a two-dimensional photonic lattice that supports dispersionless edge modes—unlike conventional edge modes that sustain propagating photons. As a case study, we consider a honeycomb lattice ( photonic graphene ) of coupled resonators with a zigzag edge, where the edge modes form a flat band defined only over a restricted region of momentum space. We show that light–matter interactions are effectively captured by a dissipative cavity-QED model, wherein the emitter coherently couples to a localized mode emerging as a superposition of edge modes. This mode has support on only one sublattice and displays an unconventional power-law localization around the qubit—yet remaining normalizable in the thermodynamic limit—with a spatial range that can be tuned by introducing lattice anisotropy. We predict the occurrence of vacuum Rabi oscillations and state transfer between distant emitters. An experimental demonstration using superconducting circuits is proposed.

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Journal
Quantum Science and Technology
Published
2026-09-28
DOI
https://doi.org/10.1088/2058-9565/aea2c7
Primary Topic
Topological Materials and Phenomena
Type
article
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article

Emergent cavity-QED dynamics along the edge of a photonic lattice

Pasquale Scarlino, Marcel A. Pinto, Léo Peyruchat, Luca Leonforte et al.
Quantum Science and Technology
Topological Materials and Phenomena
article

Emergent cavity-QED dynamics along the edge of a photonic lattice

Pasquale Scarlino, Marcel A. Pinto, Léo Peyruchat, Luca Leonforte, Francesco Ciccarello, Vincent Jouanny, Enrico Di Benedetto
article en

Abstract

Abstract We investigate qubits coupled to the boundary of a two-dimensional photonic lattice that supports dispersionless edge modes—unlike conventional edge modes that sustain propagating photons. As a case study, we consider a honeycomb lattice ( photonic graphene ) of coupled resonators with a zigzag edge, where the edge modes form a flat band defined only over a restricted region of momentum space. We show that light–matter interactions are effectively captured by a dissipative cavity-QED model, wherein the emitter coherently couples to a localized mode emerging as a superposition of edge modes. This mode has support on only one sublattice and displays an unconventional power-law localization around the qubit—yet remaining normalizable in the thermodynamic limit—with a spatial range that can be tuned by introducing lattice anisotropy. We predict the occurrence of vacuum Rabi oscillations and state transfer between distant emitters. An experimental demonstration using superconducting circuits is proposed.

Quantum Science and TechnologyVol. 11(4)
Zhoukou Normal University (CN), École Polytechnique Fédérale de Lausanne (CH), University of Palermo (IT)
Openalex Percentile: Top 98%
Topological Materials and Phenomena
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Emergent cavity-QED dynamics along the edge of a photonic lattice — Pasquale Scarlino, Marcel A. Pinto, et al. · Quantum Science and Technology (2026) | TGRS Research Map | TGRS