Squeezed Light for the Interferometric Detection of High Frequency Gravitational Waves
arXiv:gr-qc/0401119 · doi:10.1088/0264-9381/21/5/099
Abstract
The quantum noise of the light field is a fundamental noise source in interferometric gravitational wave detectors. Injected squeezed light is capable of reducing the quantum noise contribution to the detector noise floor to values that surpass the so-called Standard-Quantum-Limit (SQL). In particular, squeezed light is useful for the detection of gravitational waves at high frequencies where interferometers are typically shot-noise limited, although the SQL might not be beaten in this case. We theoretically analyze the quantum noise of the signal-recycled laser interferometric gravitational-wave detector GEO600 with additional input and output optics, namely frequency-dependent squeezing of the vacuum state of light entering the dark port and frequency-dependent homodyne detection. We focus on the frequency range between 1 kHz and 10 kHz, where, although signal recycled, the detector is still shot-noise limited. It is found that the GEO600 detector with present design parameters will benefit from frequency dependent squeezed light. Assuming a squeezing strength of -6 dB in quantum noise variance, the interferometer will become thermal noise limited up to 4 kHz without further reduction of bandwidth. At higher frequencies the linear noise spectral density of GEO600 will still be dominated by shot-noise and improved by a factor of 10^{6dB/20dB}~2 according to the squeezing strength assumed. The interferometer might reach a strain sensitivity of 6x10^{-23} above 1 kHz (tunable) with a bandwidth of around 350 Hz. We propose a scheme to implement the desired frequency dependent squeezing by introducing an additional optical component to GEO600s signal-recycling cavity.
Presentation at AMALDI Conference 2003 in Pisa
References in corpus (10)
- Quantum noise in second generation, signal-recycled laser interferometric gravitational-wave detectors
- Quantum limits in interferometric measurements
- Experimental demonstration of a squeezing enhanced power recycled Michelson interferometer for gravitational wave detection
- Signal recycled laser-interferometer gravitational-wave detectors as optical springs
- Gravitational Wave Emission From Core-Collapse of Massive Stars
- Scaling law in signal recycled laser-interferometer gravitational-wave detectors
- Squeezed-input, optical-spring, signal-recycled gravitational-wave detectors
- Practical speed meter designs for QND gravitational-wave interferometers
- Quantum noise in laser-interferometer gravitational-wave detectors with a heterodyne readout scheme
- Recovery of continuous wave squeezing at low frequencies
Cited by in corpus (14)
- Squeezed states of light and their applications in laser interferometers
- Demonstration of a squeezed light enhanced power- and signal-recycled Michelson interferometer
- Experimental characterization of frequency dependent squeezed light
- The GEO600 squeezed light source
- Coherent control of broadband vacuum squeezing
- The Search for Gravitational Waves
- Squeezed light at sideband frequencies below 100 kHz from a single OPA
- Detuned Twin-Signal-Recycling for ultra-high precision interferometers
- Gravitational Wave Astronomy
- Gravitational-wave astronomy: the high-frequency window
- Squeezed-field injection for gravitational wave interferometers
- Parametric Oscillation with Squeezed Vacuum Reservoirs
- The finite mass beamsplitter in high power interferometers
- Non-linear Oscillations of Compact Stars and Gravitational Waves