Performance of multiple filter-cavity schemes for frequency-dependent squeezing in gravitational-wave detectors
arXiv:2506.02222 · doi:10.1103/4s4d-9mb4
Abstract
Gravitational-wave detectors use state-of-the-art quantum technologies to reduce the noise induced by vacuum fluctuations, via injection of squeezed states of light. Future detectors, such as Einstein Telescope, may require the use of two filter cavities or a 3-mirror coupled filter cavity to achieve a complex rotation of the squeezing ellipse, in order to reduce the quantum noise over the whole detector bandwidth. In this work, we compare the theoretical feasibility and performances of these two optical layouts and their resilience with respect to different degradation sources (optical losses, mismatching, locking precision), analytically and numerically. We extend previous analysis on squeezing degradation and find that the coupled cavity scheme provides similar or better performances than the two-cavity option, in terms of resilience with respect to imperfections and optical losses. We further highlight the role of mode-mismatch phases in limiting squeezing. Finally, we propose a possible two-step implementation scheme for Einstein Telescope using a single filter cavity that can be possibly upgraded into a coupled filter cavity.
21 pages, 16 figures
References in corpus (22)
- GWTC-3: Compact Binary Coalescences Observed by LIGO and Virgo During the Second Part of the Third Observing Run
- Quantum noise in second generation, signal-recycled laser interferometric gravitational-wave detectors
- Frequency-Dependent Squeezing for Advanced LIGO
- Proposal for Gravitational-Wave Detection Beyond the Standard Quantum Limit via EPR Entanglement
- A Mock Data Challenge for the Einstein Gravitational-Wave Telescope
- Squeezed-input, optical-spring, signal-recycled gravitational-wave detectors
- Practical speed meter designs for QND gravitational-wave interferometers
- Advanced LIGO detector performance in the fourth observing run
- Frequency-Dependent Squeezed Vacuum Source for Broadband Quantum Noise Reduction in Advanced Gravitational-Wave Detectors
- Squeezing the quantum noise of a gravitational-wave detector below the standard quantum limit
- Audio-band frequency-dependent squeezing
- Decoherence and degradation of squeezed states in quantum filter cavities
- Loss in long-storage-time optical cavities
- Demonstration of interferometer enhancement through EPR entanglement
- LIGOs Quantum Response to Squeezed States
- Estimation of losses in a 300 m filter cavity and quantum noise reduction in the KAGRA gravitational-wave detector
- Tuning Advanced LIGO to kilohertz signals from neutron-star collisions
- Using the etalon effect for in-situ balancing of the Advanced Virgo arm cavities
- Implications of the Quantum Noise Target for the Einstein Telescope Infrastructure Design
- Frequency-dependent squeezing for gravitational-wave detection through quantum teleportation
- Optimal detuning for quantum filter cavities
- Optical losses as a function of beam position on the mirrors in a 285-m suspended Fabry-Perot cavity