Quantum fluctuation of light limits the sensitivity of advanced laser interferometric gravitational-wave detectors. It is one of the principal obstacles on the way towards the next-generation gravitational-wave observatories. The envisioned significant improvement of the detector sensitivity requires using quantum non-demolition measurement and back-action evasion techniques, which allow us to circumvent the sensitivity limit imposed by the Heisenberg uncertainty principle. In our previous review article: "Quantum measurement theory in gravitational-wave detectors"' [Living Rev. Relativity 15, 5 (2012)], we laid down the basic principles of quantum measurement theory and provided the framework for analysing the quantum noise of interferomet...
Interferometric gravitational wave detectors (such as advanced LIGO) employ high-power solid-state l...
We analyze and discuss the quantum noise in signal-recycled laser interferometer gravitational-wave ...
© 2019, The Author(s), under exclusive licence to Springer Nature Limited. Quantum mechanics places ...
Quantum fluctuation of light limits the sensitivity of advanced laser interferometric gravitational-...
We present an overview of quantum noise in gravitational wave interferometers. Gravitational wave de...
Second-generation interferometric gravitational-wave detectors will be operating at the Standard Qua...
It has long been thought that the sensitivity of laser interferometric gravitational-wave detectors ...
It has long been thought that the sensitivity of laser interferometric gravitational-wave detectors ...
The fast progress in improving the sensitivity of the gravitational-wave detectors, we all have witn...
The Heisenberg uncertainty principle states that the position of an object cannot be known with infi...
Quantum fluctuations in the phase and amplitude quadratures of light set limitations on the sensitiv...
As laser interferometer gravitational wave (GW) detectors become quantum noise dominated, understand...
We derive a quantum limit to the sensitivity of laser interferometric gravitational-wave detectors f...
Quantum fluctuations in the phase and amplitude quadratures of light set limitations on the sensitiv...
We analyze and discuss the quantum noise in signal-recycled laser interferometer gravitational-wave ...
Interferometric gravitational wave detectors (such as advanced LIGO) employ high-power solid-state l...
We analyze and discuss the quantum noise in signal-recycled laser interferometer gravitational-wave ...
© 2019, The Author(s), under exclusive licence to Springer Nature Limited. Quantum mechanics places ...
Quantum fluctuation of light limits the sensitivity of advanced laser interferometric gravitational-...
We present an overview of quantum noise in gravitational wave interferometers. Gravitational wave de...
Second-generation interferometric gravitational-wave detectors will be operating at the Standard Qua...
It has long been thought that the sensitivity of laser interferometric gravitational-wave detectors ...
It has long been thought that the sensitivity of laser interferometric gravitational-wave detectors ...
The fast progress in improving the sensitivity of the gravitational-wave detectors, we all have witn...
The Heisenberg uncertainty principle states that the position of an object cannot be known with infi...
Quantum fluctuations in the phase and amplitude quadratures of light set limitations on the sensitiv...
As laser interferometer gravitational wave (GW) detectors become quantum noise dominated, understand...
We derive a quantum limit to the sensitivity of laser interferometric gravitational-wave detectors f...
Quantum fluctuations in the phase and amplitude quadratures of light set limitations on the sensitiv...
We analyze and discuss the quantum noise in signal-recycled laser interferometer gravitational-wave ...
Interferometric gravitational wave detectors (such as advanced LIGO) employ high-power solid-state l...
We analyze and discuss the quantum noise in signal-recycled laser interferometer gravitational-wave ...
© 2019, The Author(s), under exclusive licence to Springer Nature Limited. Quantum mechanics places ...