Multi-color Cavity Metrology
arXiv:1205.1257 · doi:10.1364/JOSAA.29.002092
Abstract
Long baseline laser interferometers used for gravitational wave detection have proven to be very complicated to control. In order to have sufficient sensitivity to astrophysical gravitational waves, a set of multiple coupled optical cavities comprising the interferometer must be brought into resonance with the laser field. A set of multi-input, multi-output servos then lock these cavities into place via feedback control. This procedure, known as lock acquisition, has proven to be a vexing problem and has reduced greatly the reliability and duty factor of the past generation of laser interferometers. In this article, we describe a technique for bringing the interferometer from an uncontrolled state into resonance by using harmonically related external fields to provide a deterministic hierarchical control. This technique reduces the effect of the external seismic disturbances by four orders of magnitude and promises to greatly enhance the stability and reliability of the current generation of gravitational wave detector. The possibility for using multi-color techniques to overcome current quantum and thermal noise limits is also discussed.
References in corpus (8)
- LIGO: The Laser Interferometer Gravitational-Wave Observatory
- Titania-doped tantala/silica coatings for gravitational-wave detection
- Thermo-optic noise in coated mirrors for high-precision optical measurements
- Measurement of Optical Response of a Detuned Resonant Sideband Extraction Interferometer
- Arm-length stabilisation for interferometric gravitational-wave detectors using frequency-doubled auxiliary lasers
- Negative optical inertia for enhancing the sensitivity of future gravitational-wave detectors
- Local readout enhancement for detuned signal-recycling interferometers
- A New Bound on Excess Frequency Noise in Second Harmonic Generation in PPKTP at the 10^-19 Level
Cited by in corpus (12)
- Advanced Virgo: a 2nd generation interferometric gravitational wave detector
- Calibration of the Advanced LIGO detectors for the discovery of the binary black-hole merger GW150914
- Review of the Advanced LIGO gravitational wave observatories leading to observing run four
- Fundamental quantum limits of multi-carrier optomechanical sensors
- An arm length stabilization system for KAGRA and future gravitational-wave detectors
- Control and tuning of a suspended Fabry-Perot cavity using digitally-enhanced heterodyne interferometry
- A back-linked Fabry-Perot interferometer for space-borne gravitational wave observations
- Study on electro-optic noise in crystalline coatings toward future gravitational wave detectors
- Global optimization of multilayer dielectric coatings for precision measurements
- Photon counting for axion interferometry
- Guided Lock of a Suspended Optical Cavity Enhanced by a Higher Order Extrapolation
- Experimental demonstration of frequency downconverted arm length stabilization for a future upgraded gravitational wave detector