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Trapped Ion Quantum Computing
Frequency Multiplexing for Quasi-Deterministic Heralded Single-Photon Sources
arXiv
Authors: Chaitali Joshi, Alessandro Farsi, Stéphane Clemmen, Sven Ramelow, Alexander L. Gaeta
Year
2017
Paper ID
44869
Status
Preprint
Abstract Read
~2 min
Abstract Words
212
Citations
N/A
Abstract
Single-photon sources based on optical parametric processes have been used extensively for quantum information applications due to their flexibility, room-temperature operation and potential for photonic integration. However, the intrinsically probabilistic nature of these sources is a major limitation for realizing large-scale quantum networks. Active feedforward switching of photons from multiple probabilistic sources is a promising approach that can be used to build a deterministic source. However, previous implementations of this approach that utilize spatial and/or temporal multiplexing suffer from rapidly increasing switching losses when scaled to a large number of modes. Here, we break this limitation via frequency multiplexing in which the switching losses remain fixed irrespective of the number of modes. We use the third-order nonlinear process of Bragg scattering four-wave mixing as an efficient ultra-low noise frequency switch and demonstrate multiplexing of three frequency modes. We achieve a record generation rate of 4.6times104 multiplexed photons per second with an ultra-low g2(0) = 0.07, indicating high single-photon purity. Our scalable, all-fiber multiplexing system has a total loss of just 1.3 dB independent of the number of multiplexed modes, such that the 4.8 dB enhancement from multiplexing three frequency modes markedly overcomes switching loss. Our approach offers a highly promising path to creating a deterministic photon source that can be integrated on a chip-based platform.
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