Quantum theory of single-photon nonlinearities generated by ensembles of emitters
Kurt Jacobs, Stefan Krastanov, Mikkel Heuck, Dirk R. Englund

TL;DR
This paper develops a comprehensive quantum theory for nonlinear optical interactions in ensembles of emitters, resolving previous fragmented approaches and revealing that outside the rotating-wave regime, nonlinearities scale with the number of emitters.
Contribution
It introduces a unified perturbation theory for single and ensemble emitters, clarifying conditions under which nonlinearities scale with ensemble size.
Findings
Quantum effects limit single-photon nonlinearities within the rotating-wave regime.
Outside the rotating-wave regime, nonlinearities scale linearly with the number of emitters.
The theory enables efficient calculations for complex multi-level systems.
Abstract
The achievement of sufficiently fast interactions between two optical fields at the few-photon level would provide a key enabler for a broad range of quantum technologies. One critical hurdle in this endeavor is the lack of a comprehensive quantum theory of the generation of nonlinearities by ensembles of emitters. Distinct approaches applicable to different regimes have yielded important insights: i) a semiclassical approach reveals that, for many-photon coherent fields, the contributions of independent emitters add independently allowing ensembles to produce strong optical nonlinearities via EIT; ii) a quantum analysis has shown that in the few-photon regime collective coupling effects prevent ensembles from inducing these strong nonlinearities. Rather surprisingly, experimental results with around twenty photons are in line with the semi-classical predictions. Theoretical analysis…
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Taxonomy
TopicsQuantum Information and Cryptography · Mechanical and Optical Resonators · Quantum optics and atomic interactions
