A scalable readout system for a superconducting adiabatic quantum optimization system
A. J. Berkley, M. W. Johnson, P. Bunyk, R. Harris, J. Johansson, T., Lanting, E. Ladizinsky, E. Tolkacheva, M. H. S. Amin, G. Rose

TL;DR
This paper presents a scalable, high-fidelity readout system for superconducting flux qubits in adiabatic quantum optimization, utilizing flux-sensitive latching elements and a novel architecture to improve robustness and error rates.
Contribution
The authors introduce a new readout architecture with flux-sensitive latching elements that enhances robustness and reduces error rates in superconducting qubit systems.
Findings
Achieved single qubit read error rates below 10^-6.
Demonstrated a 128-qubit readout system with an error probability of 8×10^-5.
Showed improved robustness against stochastic switching of dc SQUIDs.
Abstract
We have designed, fabricated and tested an XY-addressable readout system that is specifically tailored for the reading of superconducting flux qubits in an integrated circuit that could enable adiabatic quantum optimization. In such a system, the flux qubits only need to be read at the end of an adiabatic evolution when quantum mechanical tunneling has been suppressed, thus simplifying many aspects of the readout process. The readout architecture for an -qubit adiabatic quantum optimization system comprises hysteretic dc SQUIDs and rf SQUID latches controlled by bias lines. The latching elements are coupled to the qubits and the dc SQUIDs are then coupled to the latching elements. This readout scheme provides two key advantages: First, the latching elements provide exceptional flux sensitivity that significantly exceeds what may be achieved by directly…
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