Squeezed light is injected into the dark port of gravitational wave interferometers, in order to reduce the quantum noise. A fraction of the interferometer output light can reach the OPO due to sub-optimal isolation of the squeezing injection path. This backscattered light interacts with squeezed light generation process, introducing additional measurement noise. We present a theoretical description of the noise coupling mechanism and we prove the model with experimental results. We propose a control scheme to achieve a de-amplification of the backscattered light inside the OPO with a consequent reduction of the noise caused by it. The scheme was implemented at the GEO 600 detector and has proven to be crucial in maintaining a good level of...
The sensitivity of the interferometric methods for detection of gravitational waves is limited at th...
In a recent table-top experiment, we demonstrated the compatibility of three advanced interferometer...
The sensitivity of interferometric gravitational wave detectors is ultimately limited by the 'quantu...
Squeezed states of light have been recently used to improve the sensitivity of laser interferometric...
The quantum noise of the light field is a fundamental noise source in interferometric gravitational-...
The quantum noise of the light field is a fundamental noise source in interferometric gravitational-...
A fundamental noise source limiting the measurement sensitivity of interferometric gravitational wav...
The ability to directly detect gravitational waves will open a completely new branch of astronomy to...
Quantum noise will be the dominant noise source for the advanced laser interferometric gravitational...
Photon shot noise, arising from the quantum-mechanical nature of the light, currently limits the sen...
This contribution reviews our recent progress on the generation of squeezed light [1], and also the ...
We theoretically analyze the quantum noise of signal-recycled laser interferometric gravitational-wa...
Photon shot noise, arising from the quantum-mechanical nature of the light, currently limits the sen...
Gravitational-wave astronomy promises a radically new method of investigating the universe, one that...
The next upgrade of the GEO 600 gravitational-wave detector is scheduled for 2010 and will, in parti...
The sensitivity of the interferometric methods for detection of gravitational waves is limited at th...
In a recent table-top experiment, we demonstrated the compatibility of three advanced interferometer...
The sensitivity of interferometric gravitational wave detectors is ultimately limited by the 'quantu...
Squeezed states of light have been recently used to improve the sensitivity of laser interferometric...
The quantum noise of the light field is a fundamental noise source in interferometric gravitational-...
The quantum noise of the light field is a fundamental noise source in interferometric gravitational-...
A fundamental noise source limiting the measurement sensitivity of interferometric gravitational wav...
The ability to directly detect gravitational waves will open a completely new branch of astronomy to...
Quantum noise will be the dominant noise source for the advanced laser interferometric gravitational...
Photon shot noise, arising from the quantum-mechanical nature of the light, currently limits the sen...
This contribution reviews our recent progress on the generation of squeezed light [1], and also the ...
We theoretically analyze the quantum noise of signal-recycled laser interferometric gravitational-wa...
Photon shot noise, arising from the quantum-mechanical nature of the light, currently limits the sen...
Gravitational-wave astronomy promises a radically new method of investigating the universe, one that...
The next upgrade of the GEO 600 gravitational-wave detector is scheduled for 2010 and will, in parti...
The sensitivity of the interferometric methods for detection of gravitational waves is limited at th...
In a recent table-top experiment, we demonstrated the compatibility of three advanced interferometer...
The sensitivity of interferometric gravitational wave detectors is ultimately limited by the 'quantu...