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An artificial Rb atom in a semiconductor with lifetime-limited linewidth
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An artificial Rb atom in a semiconductor with lifetime-limited linewidth
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We report results important for the creation of a best-of-both-worlds quantum hybrid system consisting of a solid-state source of single photons and an atomic ensemble as quantum memory. We generate single photons from a GaAs quantum dot (QD) frequency-matched to the Rb D2-transitions and then use the Rb transitions to analyze spectrally the quantum dot photons. We demonstrate lifetime-limited QD linewidths (1.48 GHz) with both resonant and non-resonant excitation. The QD resonance fluorescence in the low power regime is dominated by Rayleigh scattering, a route to match quantum dot and Rb atom linewidths and to shape the temporal wave packet of the QD photons. Noise in the solid-state environment is relatively benign: there is a blinking of the resonance fluorescence at MHz rates but negligible upper state dephasing of the QD transition. We therefore establish a close-to-ideal solid-state source of single photons at a key wavelength for quantum technologies.
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Cited by 1 Pith paper
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A diode nanocavity for fast, efficient and tunable emission of highly entangled photon pairs and Fourier-transform-limited single photons
A GaAs quantum dot in a p-i-n diode circular Bragg grating emits tunable entangled pairs (concurrence >0.89 over 1.6 nm) and nearly Fourier-limited indistinguishable single photons (V_HOM=0.951) with η_ext≈0.55 and F_P≈8.
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