Superconducting Flux Memory for Cryogenic Applications
Tony X. Zhou, John McFarland, Aruna N. Ramanayaka, Brian Sears, Colin Stack, Aref Fouladi, Robert Smith, Sambarta Rakshit, Zachary A. Stegen, Keith D. Hillaire, Moe Khalil, Robert M. Young, David G. Ferguson, Anthony J. Przybysz, John X. Pryzbysz, Mark Covington, Gregory R Boyd, Jeremy Clark, Aaron Pesetski
Abstract
We report the development of flux memory for use with superconducting circuits. This technology stores persistent currents in superconducting loops on-chip to be used to provide flux biasing for superconducting circuits, like qubits. We developed three types of flux memory and draw comparisons among them for circuit design. We demonstrate the utility of flux memory by using an in-situ flux detector and characterize each approach and further demonstrate that once flux is set in a memory cell, benchtop DC control sources can be powered off, leaving the on-chip flux bias in place. We propose that flux memory can be arranged in a two-dimensional configuration to multiplex control signals and reduce how line counts scale (N2 devices -> 2N control lines), and our experimental results pave the path to the proposed scalability. We demonstrate the use of flux memory to flux bias a transmon qubit and show the tunability of the qubit state to a target frequency which remained stable on-chip for 20 hours.
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