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Updated: Jan 24, 2026

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Measurement of Quantum Interference in a Silicon Ring Resonator Photon Source
Published on: April 4, 2017
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Circulant preconditioning in the volume integral equation method for silicon photonics
Summary
This study introduces an effective circulant preconditioning strategy for volume integral equation (VIE) simulations in silicon photonics. This method significantly accelerates convergence for complex photonic devices, enabling efficient numerical exploration.
Area of Science:
- Photonics
- Computational Electromagnetics
- Numerical Analysis
Background:
- The volume integral equation (VIE) approach is a powerful simulation tool for silicon photonics.
- Iterative solvers for VIE face slow convergence issues in high-frequency, strong-contrast photonic problems.
- Uniform discretization leads to Toeplitz matrices, suitable for circulant approximation preconditioning.
Purpose of the Study:
- To develop an effective circulant preconditioning strategy for VIE in silicon photonics.
- To address slow convergence of iterative solvers for complex photonic structures.
- To enable efficient numerical exploration of prototype photonic devices.
Main Methods:
- Applied the multilevel circulant preconditioner of Chan and Olkin.
- Generalized the strategy using geometrical partitioning and homogenization for complex structures.
- Introduced a novel memory reduction technique for large-scale simulations.
Main Results:
- Demonstrated ideal performance for unidirectional propagation in uniform waveguides.
- Successfully generalized preconditioning for Bragg gratings, directional couplers, and disk resonators.
- Achieved manageable memory footprint for extremely long structures.
Conclusions:
- The preconditioned VIE approach offers a fast and highly useful method for silicon photonics simulations.
- The developed strategy effectively overcomes convergence limitations for diverse photonic devices.
- This work facilitates the numerical exploration and design of advanced photonic devices.
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