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A Traveling Wave Parametric Amplifier Isolator
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Superconducting traveling-wave parametric amplifiers have emerged as highly promising devices for near-quantum-limited broadband amplification of microwave signals and are essential for high quantum-efficiency microwave readout lines. Built-in isolation, as well as gain, would address their primary limitation: lack of true directionality due to potential backward travel of electromagnetic radiation to their input port. Here, we demonstrate a Josephson-junction-based traveling-wave parametric amplifier isolator. It utilizes third-order nonlinearity for amplification and second-order nonlinearity for frequency upconversion of backward propagating modes to provide reverse isolation. These parametric processes, enhanced by a novel phase matching mechanism, exhibit gain of up to 20~dB and reverse isolation of up to 30~dB over a static 3~dB bandwidth greater than 500~MHz, while keeping near-quantum limited added noise. This demonstration of a broadband truly directional amplifier ultimately paves the way towards broadband quantum-limited microwave amplification lines without bulky magnetic isolators and with inhibited back-action.
Forward citations
Cited by 4 Pith papers
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Multi-stage Quantum Amplifier Readout Chain
A two-stage KTWPA readout chain achieves <2 quanta added noise over 1 GHz bandwidth with ~1000x less power than semiconductor-amplifier chains.
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Kinetic Inductance Traveling Wave Parametric Amplifiers Near the Quantum Limit: Methodology and Characterization
Kinetic inductance traveling wave parametric amplifiers made from 10 nm NbTiN films reach 1.1 quanta excess noise, over 25 dB gain, and multi-GHz bandwidth without magnetic shielding.
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Josephson Traveling-Wave Parametric Amplifier with Inverse Kerr Phase Matching
A JTWPA using flux-tunable negative Kerr nonlinearity to balance chromatic dispersion achieves 20 dB gain over 3 GHz with near-quantum-limited noise.
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Nonreciprocity in Quantum Technology
A review of nonreciprocal quantum devices and their emerging role in quantum information processing and sensing.
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