Cancellation of photothermally induced instability in an optical resonator
arXiv:2208.07517 · doi:10.1364/OPTICA.457328
Abstract
Optical systems are often subject to parametric instability caused by the delayed response of the optical field to the system dynamics. In some cases, parasitic photothermal effects aggravate the instability by adding new interaction dynamics. This may lead to the possible insurgence or amplification of parametric gain that can further destabilize the system. In this paper, we show that the photothermal properties of an optomechanical cavity can be modified to mitigate or even completely cancel optomechanical instability. By inverting the sign of the photothermal interaction to let it cooperate with radiation pressure, we achieve control of the system dynamics to be fully balanced around a stable equilibrium point. Our study provides a feedback solution for optical control and precise metrological applications, specifically in high-sensitivity resonating systems that are particularly susceptible to parasitic photothermal effects, such as our test case of a macroscopic optical levitation setup. This passive stabilization technique is beneficial for improving system performance limited by photothermal dynamics in broad areas of optics, optomechanics, photonics, and laser technologies.
15 pages, 5 figures
References in corpus (11)
- Sideband Cooling Micromechanical Motion to the Quantum Ground State
- Motional Quantum Ground State of a Levitated Nanoparticle from Room Temperature
- Millikelvin cooling of an optically trapped microsphere in vacuum
- Optical dilution and feedback cooling of a gram-scale oscillator to 6.9 mK
- Thermo-optic noise in coated mirrors for high-precision optical measurements
- Observation of Parametric Instability in Advanced LIGO
- Photothermally Induced Transparency
- Parametric Instability in Long Optical Cavities and Suppression by Dynamic Transverse Mode Frequency Modulation
- Photo-Thermal Transfer Function of Dielectric Mirrors for Precision Measurements
- Observation of Nonlinear Dynamics in an Optical Levitation System
- Optical back-action on the photothermal relaxation rate