Quantum fluctuations in the phase and amplitude quadratures of light set limitations on the sensitivity of modern optical instruments. The sensitivity of the interferometric gravitational-wave detectors, such as the Advanced Laser Interferometer Gravitational-Wave Observatory (LIGO), is limited by quantum shot noise, quantum radiation pressure noise, and a set of classical noises. We show how the quantum properties of light can be used to distinguish these noises using correlation techniques. Particularly, in the first part of the paper we show estimations of the coating thermal noise and gas phase noise, hidden below the quantum shot noise in the Advanced LIGO sensitivity curve. We also make projections on the observatory sensitivity durin...
The uncertainty principle, applied naively to the test masses of a laser-interferometer gravitationa...
Quantum fluctuations in the phase and amplitude quadratures of light set limitations on the sensitiv...
The uncertainty principle, applied naively to the test masses of a laser-interferometer gravitationa...
Quantum fluctuations in the phase and amplitude quadratures of light set limitations on the sensitiv...
Quantum fluctuations in the phase and amplitude quadratures of light set limitations on the sensitiv...
Quantum fluctuations in the phase and amplitude quadratures of light set limitations on the sensitiv...
Quantum fluctuations in the phase and amplitude quadratures of light set limitations on the sensitiv...
Quantum fluctuations in the phase and amplitude quadratures of light set limitations on the sensitiv...
The measurement of minuscule forces and displacements with ever greater precision is inhibited by th...
Quantum fluctuations in the phase and amplitude quadratures of light set limitations on the sensitiv...
© 2020, The Author(s), under exclusive licence to Springer Nature Limited. The measurement of minusc...
© 2020, The Author(s), under exclusive licence to Springer Nature Limited. The measurement of minusc...
Quantum fluctuations in the phase and amplitude quadratures of light set limitations on the sensitiv...
Quantum fluctuations in the phase and amplitude quadratures of light set limitations on the sensitiv...
The uncertainty principle, applied naively to the test masses of a laser-interferometer gravitationa...
The uncertainty principle, applied naively to the test masses of a laser-interferometer gravitationa...
Quantum fluctuations in the phase and amplitude quadratures of light set limitations on the sensitiv...
The uncertainty principle, applied naively to the test masses of a laser-interferometer gravitationa...
Quantum fluctuations in the phase and amplitude quadratures of light set limitations on the sensitiv...
Quantum fluctuations in the phase and amplitude quadratures of light set limitations on the sensitiv...
Quantum fluctuations in the phase and amplitude quadratures of light set limitations on the sensitiv...
Quantum fluctuations in the phase and amplitude quadratures of light set limitations on the sensitiv...
Quantum fluctuations in the phase and amplitude quadratures of light set limitations on the sensitiv...
The measurement of minuscule forces and displacements with ever greater precision is inhibited by th...
Quantum fluctuations in the phase and amplitude quadratures of light set limitations on the sensitiv...
© 2020, The Author(s), under exclusive licence to Springer Nature Limited. The measurement of minusc...
© 2020, The Author(s), under exclusive licence to Springer Nature Limited. The measurement of minusc...
Quantum fluctuations in the phase and amplitude quadratures of light set limitations on the sensitiv...
Quantum fluctuations in the phase and amplitude quadratures of light set limitations on the sensitiv...
The uncertainty principle, applied naively to the test masses of a laser-interferometer gravitationa...
The uncertainty principle, applied naively to the test masses of a laser-interferometer gravitationa...
Quantum fluctuations in the phase and amplitude quadratures of light set limitations on the sensitiv...
The uncertainty principle, applied naively to the test masses of a laser-interferometer gravitationa...