Nonreciprocal microwave signal processing with a field-programmable Josephson amplifier

F Lecocq, L Ranzani, GA Peterson, K Cicak… - Physical Review …, 2017 - APS
Physical Review Applied, 2017APS
We report on the design and implementation of a field-programmable Josephson amplifier
(FPJA)—a compact and lossless superconducting circuit that can be programmed in situ by
a set of microwave drives to perform reciprocal and nonreciprocal frequency conversion and
amplification. In this work, we demonstrate four modes of operation: frequency conversion
(transmission of-0.5 dB, reflection of-30 dB), circulation (transmission of-0.5 dB, reflection of-
30 dB, isolation of 30 dB), phase-preserving amplification (gain> 20 dB, one photon of …
We report on the design and implementation of a field-programmable Josephson amplifier (FPJA)—a compact and lossless superconducting circuit that can be programmed in situ by a set of microwave drives to perform reciprocal and nonreciprocal frequency conversion and amplification. In this work, we demonstrate four modes of operation: frequency conversion (transmission of dB, reflection of dB), circulation (transmission of dB, reflection of dB, isolation of 30 dB), phase-preserving amplification (gain , one photon of added noise) and directional phase-preserving amplification (reflection of dB, forward gain of 18 dB, reverse isolation of 8 dB, one photon of added noise). The system exhibits quantitative agreement with the theoretical prediction. Based on a gradiometric superconducting quantum-interference device with Josephson junctions, the FPJA is first-order insensitive to flux noise and can be operated without magnetic shielding at low temperature. Owing to its flexible design and compatibility with existing superconducting fabrication techniques, the FPJA offers a straightforward route toward on-chip integration with superconducting quantum circuits such as qubits and microwave optomechanical systems.
American Physical Society
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