Adaptive time-domain simulation of optical cavities with arbitrary dynamics

Fuente: arXiv
Saved in:
Bibliographic Details
Main Authors: Svizzeretto, A., Diaz, J. Casanueva, Swinkels, B. L., Bawaj, M.
Format: Preprint
Published: 2026
Subjects:
Online Access:
Tags: Add Tag
No Tags, Be the first to tag this record!
_version_ 1866911680874676224
author Svizzeretto, A.
Diaz, J. Casanueva
Swinkels, B. L.
Bawaj, M.
author_facet Svizzeretto, A.
Diaz, J. Casanueva
Swinkels, B. L.
Bawaj, M.
contents We present a fast time-domain simulator for optical cavities capable of reproducing non-linear dynamical regimes arising from ring-down effect during resonance crossings at high mirror velocities. The model is based on a recursive formulation of the intracavity electric field as a sum over round trips, preserving the cavity memory while maintaining high computational efficiency. The simulator is designed to achieve three main goals. First, the boundary conditions of the cavity can be modified at each simulation step, allowing arbitrary time-dependent variations of both mirror positions and input electric field. Second, the sampling frequency can be flexibly chosen by the user, however, it is internally adjusted before effectively executing the simulation to remain consistent with the cavity round-trip structure. Finally, high computational efficiency was obtained by avoiding the repeated evaluation of the full electric field history. The framework is validated through comparison with experimental data from the Virgo interferometer during a mechanical excitation experiment, showing good agreement in non-adiabatic regimes. Due to its efficiency and flexibility, the simulator provides a versatile tool for time-domain studies of optical resonators and future applications in real-time control and reinforcement-learning-based lock acquisition.
format Preprint
id arxiv_https___arxiv_org_abs_2605_13599
institution arXiv
publishDate 2026
record_format arxiv
spellingShingle Adaptive time-domain simulation of optical cavities with arbitrary dynamics
Svizzeretto, A.
Diaz, J. Casanueva
Swinkels, B. L.
Bawaj, M.
Optics
Instrumentation and Detectors
We present a fast time-domain simulator for optical cavities capable of reproducing non-linear dynamical regimes arising from ring-down effect during resonance crossings at high mirror velocities. The model is based on a recursive formulation of the intracavity electric field as a sum over round trips, preserving the cavity memory while maintaining high computational efficiency. The simulator is designed to achieve three main goals. First, the boundary conditions of the cavity can be modified at each simulation step, allowing arbitrary time-dependent variations of both mirror positions and input electric field. Second, the sampling frequency can be flexibly chosen by the user, however, it is internally adjusted before effectively executing the simulation to remain consistent with the cavity round-trip structure. Finally, high computational efficiency was obtained by avoiding the repeated evaluation of the full electric field history. The framework is validated through comparison with experimental data from the Virgo interferometer during a mechanical excitation experiment, showing good agreement in non-adiabatic regimes. Due to its efficiency and flexibility, the simulator provides a versatile tool for time-domain studies of optical resonators and future applications in real-time control and reinforcement-learning-based lock acquisition.
title Adaptive time-domain simulation of optical cavities with arbitrary dynamics
topic Optics
Instrumentation and Detectors
url https://arxiv.org/abs/2605.13599