Backscattering in Nonlinear Microring Resonators Via A Gaussian Treatment of Coupled Cavity Modes
Will McCutcheon

TL;DR
This paper develops a comprehensive Gaussian model for coupled cavity modes in microring resonators, accounting for backscattering effects that impact quantum light source fidelity, and explores their nonlinear and quantum properties through numerical simulations.
Contribution
It introduces a general Gaussian framework for coupled cavity modes with backscattering, enabling detailed analysis of their nonlinear dynamics and quantum light generation.
Findings
Backscattering causes mode splitting and hybridization in microring resonators.
The model predicts impurity and heralding efficiency in photon schemes.
Spontaneous and stimulated processes show strong correspondence.
Abstract
Systems of coupled cavity modes have the potential to provide bright quantum optical states of light in a highly versatile manner. Microring resonators for instance are highly scalable candidates for photon sources thanks to CMOS fabrication techniques, their small footprint and the relative ease of coupling many such microrings together, however, surface roughness of the wave-guides, and defects in the coupler geometry routinely induce splitting of the cavity modes due to backscattering and backcoupling. The parasitic back-propagating mode in the microring leads to hybridisation of the modes, altering the linear and nonlinear properties of this system of coupled cavity modes, and ultimately constraining the fidelity of quantum light sources that can be produced. In this paper, we derive a comprehensive general model for Gaussian nonlinear processes in systems of coupled cavity modes,…
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