Detector Array Readout with Traveling Wave Amplifiers
arXiv:2111.01512 · doi:10.1007/s10909-022-02809-6
Abstract
Noise at the quantum limit over a large bandwidth is a fundamental requirement for future applications operating at millikelvin temperatures, such as the neutrino mass measurement, the next-generation x-ray observatory, the CMB measurement, the dark matter and axion detection, and the rapid high-fidelity readout of superconducting qubits. The read out sensitivity of arrays of microcalorimeter detectors, resonant axion-detectors, and qubits, is currently limited by the noise temperature and bandwidth of the cryogenic amplifiers. The DARTWARS (Detector Array Readout with Traveling Wave AmplifieRS) project has the goal of developing high-performing innovative traveling wave parametric amplifiers (TWPAs) with a high gain, a high saturation power, and a quantum-limited or nearly quantum-limited noise. The practical development follows two different promising approaches, one based on the Josephson junctions and the other one based on the kinetic inductance of a high-resistivity superconductor. In this contribution we present the aims of the project, the adopted design solutions and preliminary results from simulations and measurements.
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Cited by in corpus (8)
- Characterization of NbTiN films with thicknesses below 20 nm for low power kinetic inductance amplifiers
- Ultra low noise readout with travelling wave parametric amplifiers: the DARTWARS project
- Progress in the development of a KITWPA for the DARTWARS project
- Driving a Josephson Traveling Wave Parametric Amplifier into chaos: effects of a non-sinusoidal current-phase relation
- Nonlinear Behavior of Josephson Traveling Wave Parametric Amplifiers
- Effect of 2 harmonic current--phase relation on a behavior of a Josephson Traveling Wave Parametric Amplifier
- Development of KI-TWPAs for the DARTWARS project
- Magnetic-Field and Temperature Limits of a Kinetic-Inductance Traveling-Wave Parametric Amplifier