Beating the standard sensitivity-bandwidth limit of cavity-enhanced interferometers with internal squeezed-light generation
arXiv:1702.01044 · doi:10.1103/PhysRevLett.118.143601
Abstract
The shot-noise limited peak sensitivity of cavity-enhanced interferometric measurement devices, such as gravitational-wave detectors, can be improved by increasing the cavity finesse, even when comparing fixed intra-cavity light powers. For a fixed light power inside the detector, this comes at the price of a proportional reduction in the detection bandwidth. High sensitivity over a large span of signal frequencies, however, is essential for astronomical observations. It is possible to overcome this standard sensitivity-bandwidth limit using non-classical correlations in the light field. Here, we investigate the internal squeezing approach, where the parametric amplification process creates a non-classical correlation directly inside the interferometer cavity. We analyse the limits of the approach theoretically, and measure 36% increase in the sensitivity-bandwidth product compared to the classical case. To our knowledge this is the first experimental demonstration of an improvement in the sensitivity-bandwidth product using internal squeezing, opening the way for a new class of optomechanical force sensing devices.
5 pages, 3 figures
References in corpus (6)
- Advanced Virgo: a 2nd generation interferometric gravitational wave detector
- Advanced LIGO
- Exploring the Sensitivity of Next Generation Gravitational Wave Detectors
- Detection of 15 dB Squeezed States of Light and their Application for the Absolute Calibration of Photoelectric Quantum Efficiency
- Quantum Metrology for Gravitational Wave Astronomy
- Demonstration of a Tunable-Bandwidth White Light Interferometer using Anomalous Dispersion in Atomic Vapor
Cited by in corpus (26)
- Entanglement-Enhanced Optomechanical Sensing
- Advanced quantum techniques for future gravitational-wave detectors
- Optomechanical cooling with intracavity squeezed light
- Dissipative stabilization of squeezing beyond 3 dB in a microwave mode
- Entanglement-enhanced optomechanical sensor array for dark matter searches
- Towards the Fundamental Quantum Limit of Linear Measurements of Classical Signals
- Quantum expander for gravitational-wave observatories
- Optomechanical quadrature squeezing in the non-Markovian regime
- High-efficiency measurement of an artificial atom embedded in a parametric amplifier
- Engineering the Optical Spring via Intra-Cavity Optical-Parametric Amplification
- Quantum limit for laser interferometric gravitational wave detectors from optical dissipation
- Particle swarm optimization of the sensitivity of a cryogenic gravitational wave detector
- Converting the signal-recycling cavity into an unstable optomechanical filter to enhance the detection bandwidth of gravitational-wave detectors
- Mitigating quantum decoherence in force sensors by internal squeezing
- Squeezed displaced entangled states in the quantum Rabi model
- Boosting the sensitivity of high frequency gravitational wave detectors by PT-symmetry
- A Broadband Signal Recycling Scheme for Approaching the Quantum Limit from Optical Losses
- Kerr-Enhanced Optical Spring
- Quantum-enhanced laser phase noise filter
- Fundamental sensitivity limit of lossy cavity-enhanced interferometers with external and internal squeezing
- Amplified Squeezed States: Analyzing Loss and Phase Noise
- Surpassing spectator qubits with photonic modes and continuous measurement for Heisenberg-limited noise mitigation
- Photothermal effect in macroscopic optomechanical systems with an intracavity nonlinear optical crystal
- Observation of an Optical Spring in a Robustly Controlled Signal-Recycled Michelson Interferometer
- Quantum enhanced optomechanical magnetometry
- Designing optimal linear detectors -- a bottom-up approach