Emergence of solitons from many-body photon bound states in quantum nonlinear media
Giuseppe Calajo, Darrick E. Chang

TL;DR
This paper demonstrates that in quantum nonlinear media, many-photon bound states naturally evolve into classical solitons, bridging the gap between quantum many-body physics and semi-classical soliton phenomena.
Contribution
The authors develop a spin-model framework and use matrix product states to connect quantum many-photon bound states with classical solitons like SIT.
Findings
Large-photon bound states resemble classical solitons
Numerical simulations confirm quantum-classical correspondence
Analytical derivation of two-photon bound state dispersion
Abstract
Solitons are known to occur in the context of atom-light interaction via the well-known semi-classical phenomenon of self-induced transparency (SIT). Separately, in the regime where both light and atoms are fully treated quantum mechanically, quantum few-photon bound states are known to be a ubiquitous phenomenon that arises in different systems such as atoms coupled to chiral or bidirectional waveguides, and in Rydberg atomic media. In the specific case of two-level atoms coupled to a chiral waveguide, a recent analysis based on Bethe ansatz has established that SIT emerges from the quantum realm as a superposition of quantum many-photon bound states. Beyond this case, however, the nature of any connection between the full quantum many-body regime and semi-classical behavior has not been established. Here, we employ a general spin-model formulation of quantum atom-light interfaces to…
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