Nondegenerate Josephson Mixers with Enhanced Bandwidth and Saturation Power for Quantum Signal Amplification and Transduction
Baleegh Abdo, Dongbing Shao, Shayne Cairns, Jae-woong Nah, Oblesh Jinka, Srikanth Srinivasan, Thomas McConkey, Vincent Arena, Corrado Mancini

TL;DR
This paper presents redesigned nondegenerate Josephson mixers with significantly improved bandwidth and saturation power, enabling more efficient quantum signal processing and frequency multiplexing in quantum computing applications.
Contribution
The authors optimize Josephson ring modulator parameters and engineer electromagnetic environments to enhance bandwidth and saturation power of Josephson mixers.
Findings
Achieved bandwidths of 400-700 MHz in experimental JMs.
Demonstrated saturation powers up to -86 dBm.
Enhanced JMs suitable for frequency-multiplexed quantum processing.
Abstract
Nondegenerate Josephson mixers (JMs), formed by coupling two different transmission-line resonators to Josephson ring modulators (JRMs), are vital and versatile devices capable of processing microwave signals at the quantum limit. Owing to the lossless nondegenerate three-wave mixing process enabled by the JRM, JMs can perform phase preserving amplification of quantum signals, generate two-mode squeezed states, and perform noiseless frequency conversion. However, due to their limited bandwidth and saturation power, such resonator-based JMs are generally unable to simultaneously process frequency-multiplexed signals required in large quantum processors. To overcome this longstanding dual challenge, we redesign the JRM parameters by optimizing its inductances to suppress higher order mixing products and engineer its electromagnetic environment by incorporating lumped-element coupled-mode…
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Taxonomy
TopicsQuantum Information and Cryptography · Atomic and Subatomic Physics Research · Mechanical and Optical Resonators
