Quantum Noise in Large-Scale Coherent Nonlinear Photonic Circuits

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Abstract

A semiclassical simulation approach is presented for studying quantum noise in large-scale photonic circuits incorporating an ideal Kerr nonlinearity. A circuit solver is used to generate matrices defining a set of stochastic differential equations, in which the resonator field variables represent random samplings of the Wigner quasiprobability distributions. Although the semiclassical approach involves making a large-photon-number approximation, tests on one- and two-resonator circuits indicate satisfactory agreement between the semiclassical and full-quantum simulation results in the parameter regime of interest. The semiclassical model is used to simulate random errors in a large-scale circuit that contains 88 resonators and hundreds of components in total and functions as a four-bit ripple counter. The error rate as a function of on-state photon number is examined, and it is observed that the quantum fluctuation amplitudes do not increase as signals propagate through the circuit, an important property for scalability.

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Santori, C., Pelc, J. S., Beausoleil, R. G., Tezak, N., Hamerly, R., & Mabuchi, H. (2014). Quantum Noise in Large-Scale Coherent Nonlinear Photonic Circuits. Physical Review Applied, 1(5). https://doi.org/10.1103/PhysRevApplied.1.054005

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