A near-ideal degenerate parametric amplifier
arXiv:2108.10471 · doi:10.1103/PhysRevApplied.17.034064
Abstract
Degenerate parametric amplifiers (DPAs) exhibit the unique property of phase-sensitive gain and can be used to noiselessly amplify small signals or squeeze field fluctuations beneath the vacuum level. In the microwave domain, these amplifiers have been utilized to measure qubits in elementary quantum processors, search for dark matter, facilitate high-sensitivity spin resonance spectroscopy and have even been proposed as the building blocks for a measurement based quantum computer. Until now, microwave DPAs have almost exclusively been made from nonlinear Josephson junctions, which exhibit high-order nonlinearities that limit their dynamic range and squeezing potential. In this work we investigate a new microwave DPA that exploits a nonlinearity engineered from kinetic inductance. The device has a simple design and displays a dynamic range that is four orders of magnitude greater than state-of-the-art Josephson DPAs. We measure phase sensitive gains up to 50 dB and demonstrate a near-quantum-limited noise performance. Additionally, we show that the higher-order nonlinearities that limit other microwave DPAs are almost non-existent for this amplifier, which allows us to demonstrate its exceptional squeezing potential by measuring the deamplification of coherent states by as much as 26 dB.
References in corpus (50)
- Enhancing the sensitivity of the LIGO gravitational wave detector by using squeezed states of light
- Universal Quantum Computation with Continuous-Variable Cluster States
- Amplification and squeezing of quantum noise with a tunable Josephson metamaterial
- Time-Domain Multiplexed 2-Dimensional Cluster State: Universal Quantum Computing Platform
- The Kerr-Cat Qubit: Stabilization, Readout, and Gates
- A quantum-enhanced search for dark matter axions
- Fault-Tolerant Measurement-Based Quantum Computing with Continuous-Variable Cluster States
- Observation of quantum jumps in a superconducting artificial atom
- Efficient and robust analysis of complex scattering data under noise in microwave resonators
- High Kinetic Inductance Superconducting Nanowire Resonators for Circuit QED in a Magnetic Field
- An analysis method for asymmetric resonator transmission applied to superconducting devices
- Tunable superconducting nanoinductors
- Reducing intrinsic loss in superconducting resonators by surface treatment and deep etching of silicon substrates
- Reaching the quantum limit of sensitivity in electron spin resonance
- Mechanical On-Chip Microwave Circulator
- Quantum limited amplification and entanglement in coupled nonlinear resonators
- Broadband parametric amplification with impedance engineering: Beyond the gain-bandwidth product
- Gate-based single-shot readout of spins in silicon
- Introduction to Quantum-limited Parametric Amplification of Quantum Signals with Josephson Circuits
- Optimizing the nonlinearity and dissipation of a SNAIL Parametric Amplifier for dynamic range
- Minimal resonator loss for circuit quantum electrodynamics
- Controlling the dynamic range of a Josephson parametric amplifier
- A three-wave mixing kinetic inductance traveling-wave amplifier with near-quantum-limited noise performance
- Performance of cavity-parametric amplifiers, employing Kerr nonlinearites, in the presence of two-photon loss
- Quantum superposition of a single microwave photon in two different "colour" states
- Low-noise kinetic inductance traveling-wave amplifier using three-wave mixing
- Widely tunable on-chip microwave circulator for superconducting quantum circuits
- Electron Spin Resonance at the Level of 10000 Spins Using Low Impedance Superconducting Resonators
- Kerr-free three-wave mixing in superconducting quantum circuits
- On-Chip Microwave Quantum Hall Circulator
- High-gain weakly nonlinear flux-modulated Josephson parametric amplifier using a SQUID-array
- Squeezing and quantum state engineering with Josephson traveling wave amplifiers
- Broadband parametric amplifiers based on nonlinear kinetic inductance artificial transmission lines
- Magnetic resonance with squeezed microwaves
- Fast gate-based readout of silicon quantum dots using Josephson parametric amplification
- Squeezed vacuum used to accelerate the search for a weak classical signal
- Effect of higher-order nonlinearities on amplification and squeezing in Josephson parametric amplifiers
- Optimal operation of a Josephson parametric amplifier for vacuum squeezing
- Josephson Array Mode Parametric Amplifier
- Understanding the saturation power of Josephson Parametric Amplifiers made from SQUIDs arrays
- Robust fault tolerance for continuous-variable cluster states with excess anti-squeezing
- Electron Spin Resonance spectroscopy with femtoliter detection volume
- Millimeter-Wave Four-Wave Mixing via Kinetic Inductance for Quantum Devices
- Dual approach to circuit quantization using loop charges
- Theory of Multiwave Mixing within the Superconducting Kinetic-Inductance Traveling-Wave Amplifier
- Generation and efficient measurement of single photons from fixed frequency superconducting qubits
- Multiparametric Amplification and Qubit Measurement with a Kerr-free Josephson Ring Modulator
- Parametric amplification with weak-link nonlinearity in superconducting microresonators
- Design of an on-chip superconducting microwave circulator with octave bandwidth
- Calibration of cryogenic amplification chains using normal-metal--insulator--superconductor junctions
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- In-situ amplification of spin echoes within a kinetic inductance parametric amplifier
- Granular Aluminum Parametric Amplifier for Low-Noise Measurements in Tesla Fields
- A high gain travelling-wave parametric amplifier based on three-wave mixing
- Strong Charge-Photon Coupling in Planar Germanium Enabled by Granular Aluminium Superinductors
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- Universal Control in Bosonic Systems with Weak Kerr Nonlinearities
- Kinetic Inductive Electromechanical Transduction for Nanoscale Force Sensing
- Determining Absolute Neutrino Mass using Quantum Technologies
- Kerr nonlinearity and parametric amplification with an Al-InAs superconductor-semiconductor Josephson junction
- Superconducting resonator parametric amplifiers with intrinsic separation of pump and signal tones
- Selective Single and Double-Mode Quantum Limited Amplifier
- Temperature dependence of microwave losses in lumped-element resonators made from superconducting nanowires with high kinetic inductance
- Practical Trainable Temporal Postprocessor for Multistate Quantum Measurement
- Design, fabrication and characterization of kinetic-inductive force sensors for scanning probe applications
- Pump-efficient Josephson parametric amplifiers with high saturation power
- Wireless Josephson parametric amplifier above 20 GHz
- Modeling Josephson traveling-wave parametric amplifiers with electromagnetic and circuit co-simulation
- Superconducting Parametric Amplifiers: Resonator Design and Role in Qubit Readout
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