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arXiv · 2609.10389

Fast Synergetic Simulation to Study Slow Evolution of Soliton Patterns in Optical Resonators

Abstract

Complex patterns in physical and biological systems often emerge through slow collective dynamics governed by a small number of key variables. In nonlinear optical resonators, dissipative Kerr solitons provide an important example, where interactions between well-separated solitons can evolve over timescales far longer than the characteristic loss and gain timescales. Direct numerical simulation of these dynamics is challenging because stiffness forces conventional methods to resolve many rapidly damped degrees-of-freedom with very small time steps. We present a numerical scheme, the synergetic method, that eliminates these rapidly damped degrees-of-freedom and retains the slowly evolving modes, enabling time steps many orders of magnitude larger than those used in conventional approaches. Applied to soliton molecules in driven Kerr cavities, the method achieves speedups of $10^3$ to $10^5$ while capturing dynamics on laboratory timescales. We use it to model the full interaction dynamics of a three-soliton molecule and the evolution of an eight-soliton molecule. The approach provides an efficient framework for studying slow pattern formation in nonlinear systems with widely separated timescales.

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Sanzida Akter, Pradyoth Shandilya, Logan Courtright, Amir Leshem, Giuseppe D'Aguanno, Omri Gat, Curtis R. Menyuk. 2026-09-09. Fast Synergetic Simulation to Study Slow Evolution of Soliton Patterns in Optical Resonators. https://arxiv.org/abs/2609.10389

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