Computational framework for non-Markovian multi-emitter dynamics beyond the single-excitation limit
Hyunwoo Choi, Weng Cho Chew, Dong-Yeop Na

TL;DR
This paper introduces a Green's function-based computational framework for modeling non-Markovian multi-emitter quantum electrodynamics beyond the single-excitation limit, capturing complex multi-photon dynamics and interference effects.
Contribution
It develops a novel hierarchy of coupled differential equations that explicitly retains photonic amplitudes, enabling accurate simulation of multi-photon non-Markovian phenomena in arbitrary environments.
Findings
Enhanced Bell-state fidelity in structured waveguides.
Selective stabilization and delayed transfer in collective decay.
Observation of entanglement sudden birth and revivals.
Abstract
While non-Markovian dynamics have been extensively studied in the single-excitation limit to predict non-trivial phenomena, this regime remains an idealization. Moving beyond it is essential, as optical nonlinearities and phase-error accumulation in multi-photon processes render the Markovian approximation fragile. In this work, we present a Green's function-based framework for modeling non-Markovian multi-emitter quantum electrodynamics within the two-excitation manifold. The modified Langevin noise (M-LN) formalism is employed for first-principles treatment of dissipative environments, while the emitter-centered mode (ECM) framework ensures computational tractability. Unlike conventional approaches that integrate out the reservoir, we construct a non-Markovian hierarchy of coupled differential equations by explicitly retaining photonic amplitudes. Within the two-excitation hierarchy,…
Peer Reviews
No public reviews on file for this paper yet. If you reviewed it on a platform where reviews are public (OpenReview, ICLR, NeurIPS, ICML), you can paste yours below so the community can read it here.
Videos
No videos yet. Explain this paper in a talk, walkthrough, or lecture? Add one.
