Nonlinear Symmetry Breaking to Enhance the Sagnac Effect in a Microresonator Gyroscope

Fuente: arXiv
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Main Authors: Shanavas, Thariq, Krueper, Gregory, Zhu, Jiangang, Park, Wounjhang, Gopinath, Juliet T.
Format: Preprint
Published: 2025
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author Shanavas, Thariq
Krueper, Gregory
Zhu, Jiangang
Park, Wounjhang
Gopinath, Juliet T.
author_facet Shanavas, Thariq
Krueper, Gregory
Zhu, Jiangang
Park, Wounjhang
Gopinath, Juliet T.
contents Optical gyroscopes based on the Sagnac effect have been widely used for inertial navigation in aircrafts, submarines, satellites and unmanned robotics. With the rapid progress in the field of ultrahigh-quality whispering gallery mode and ring resonators in recent years, these devices offer the promise of a compact alternative to ring-laser gyroscopes (RLGs) and fiber-optic gyroscopes (FOGs). Yet, successful commercialization of a microresonator gyroscope has been hindered by the scaling of the Sagnac effect with resonator area. While several techniques have been proposed to enhance the Sagnac effect in microresonators, these enhancements also amplify the thermal noise in the microresonator. Here, we present a novel approach to measuring the Sagnac signal in chip-scale devices that overcomes this fundamental noise limitation to achieve unprecedented performance in a 200 μm optical resonator - the smallest reported to date. Our proof-of-concept design shows a 10^4 enhancement of the Sagnac signal while simultaneously suppressing thermal noise by 27 dB and environmental contributions to noise by 22 dB. We believe this approach offers a pathway for integrated photonic gyroscopes with sensitivities that match or exceed RLGs and FOGs.
format Preprint
id arxiv_https___arxiv_org_abs_2508_09132
institution arXiv
publishDate 2025
record_format arxiv
spellingShingle Nonlinear Symmetry Breaking to Enhance the Sagnac Effect in a Microresonator Gyroscope
Shanavas, Thariq
Krueper, Gregory
Zhu, Jiangang
Park, Wounjhang
Gopinath, Juliet T.
Optics
Optical gyroscopes based on the Sagnac effect have been widely used for inertial navigation in aircrafts, submarines, satellites and unmanned robotics. With the rapid progress in the field of ultrahigh-quality whispering gallery mode and ring resonators in recent years, these devices offer the promise of a compact alternative to ring-laser gyroscopes (RLGs) and fiber-optic gyroscopes (FOGs). Yet, successful commercialization of a microresonator gyroscope has been hindered by the scaling of the Sagnac effect with resonator area. While several techniques have been proposed to enhance the Sagnac effect in microresonators, these enhancements also amplify the thermal noise in the microresonator. Here, we present a novel approach to measuring the Sagnac signal in chip-scale devices that overcomes this fundamental noise limitation to achieve unprecedented performance in a 200 μm optical resonator - the smallest reported to date. Our proof-of-concept design shows a 10^4 enhancement of the Sagnac signal while simultaneously suppressing thermal noise by 27 dB and environmental contributions to noise by 22 dB. We believe this approach offers a pathway for integrated photonic gyroscopes with sensitivities that match or exceed RLGs and FOGs.
title Nonlinear Symmetry Breaking to Enhance the Sagnac Effect in a Microresonator Gyroscope
topic Optics
url https://arxiv.org/abs/2508.09132