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Tuning the Photon Statistics of a Strongly Coupled Nanophotonic System

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arxiv 1610.00174 v2 pith:L7CDAGYG submitted 2016-10-01 physics.optics cond-mat.mes-hallquant-ph

Tuning the Photon Statistics of a Strongly Coupled Nanophotonic System

classification physics.optics cond-mat.mes-hallquant-ph
keywords emissionmulti-photonsingle-stronglysystemscapturecoupledfind
verification ladder T0 review T1 audit T2 compute T3 formal T4 reserved
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We investigate the dynamics of single- and multi-photon emission from detuned strongly coupled systems based on the quantum-dot-photonic-crystal resonator platform. Transmitting light through such systems can generate a range of non-classical states of light with tunable photon counting statistics due to the nonlinear ladder of hybridized light-matter states. By controlling the detuning between emitter and resonator, the transmission can be tuned to strongly enhance either single- or two-photon emission processes. Despite the strongly-dissipative nature of these systems, we find that by utilizing a self-homodyne interference technique combined with frequency-filtering we are able to find a strong two-photon component of the emission in the multi-photon regime. In order to explain our correlation measurements, we propose rate equation models that capture the dominant processes of emission both in the single- and multi-photon regimes. These models are then supported by quantum-optical simulations that fully capture the frequency filtering of emission from our solid-state system.

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