Improving the sensitivity to gravitational-wave sources by modifying the input-output optics of advanced interferometers
arXiv:gr-qc/0310026 · doi:10.1103/PhysRevD.69.102004
Abstract
We study frequency dependent (FD) input-output schemes for signal-recycling interferometers, the baseline design of Advanced LIGO and the current configuration of GEO 600. Complementary to a recent proposal by Harms et al. to use FD input squeezing and ordinary homodyne detection, we explore a scheme which uses ordinary squeezed vacuum, but FD readout. Both schemes, which are sub-optimal among all possible input-output schemes, provide a global noise suppression by the power squeeze factor, while being realizable by using detuned Fabry-Perot cavities as input/output filters. At high frequencies, the two schemes are shown to be equivalent, while at low frequencies our scheme gives better performance than that of Harms et al., and is nearly fully optimal. We then study the sensitivity improvement achievable by these schemes in Advanced LIGO era (with 30-m filter cavities and current estimates of filter-mirror losses and thermal noise), for neutron star binary inspirals, and for narrowband GW sources such as low-mass X-ray binaries and known radio pulsars. Optical losses are shown to be a major obstacle for the actual implementation of these techniques in Advanced LIGO. On time scales of third-generation interferometers, like EURO/LIGO-III (~2012), with kilometer-scale filter cavities, a signal-recycling interferometer with the FD readout scheme explored in this paper can have performances comparable to existing proposals. [abridged]
Figs. 9 and 12 corrected; Appendix added for narrowband data analysis
References in corpus (17)
- Nuclear-Powered Millisecond Pulsars and the Maximum Spin Frequency of Neutron Stars
- Detector Description and Performance for the First Coincidence Observations between LIGO and GEO
- Setting upper limits on the strength of periodic gravitational waves using the first science data from the GEO600 and LIGO detectors
- Analysis of LIGO data for gravitational waves from binary neutron stars
- Scaling law in signal recycled laser-interferometer gravitational-wave detectors
- First upper limits from LIGO on gravitational wave bursts
- Squeezed-input, optical-spring, signal-recycled gravitational-wave detectors
- Analysis of First LIGO Science Data for Stochastic Gravitational Waves
- Practical speed meter designs for QND gravitational-wave interferometers
- Second generation instruments for the Laser Interferometer Gravitational Wave Observatory (LIGO)
- Sagnac Interferometer as a Speed-Meter-Type, Quantum-Nondemolition Gravitational-Wave Detector
- Sensitivity limitations in optical speed meter topology of gravitational-wave antennae
- Optical cavities as amplitude filters for squeezed fields
- Low pumping energy mode of the "optical bars''/"optical lever" topologies of gravitational-wave antennae
- Back-action cancellation in interferometers by quantum locking
- Quantum speedmeter and laser interferometric gravitational-wave antennae
- Quantum noise in gravitational-wave interferometers: Overview and recent developments
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