Precision frequency tuning of tunable transmon qubits using alternating-bias assisted annealing
Xiqiao Wang, Joel Howard, Eyob A. Sete, Greg Stiehl, Cameron Kopas,, Stefano Poletto, Xian Wu, Mark Field, Nicholas Sharac, Christopher Eckberg,, Hilal Cansizoglu, Raja Katta, Josh Mutus, Andrew Bestwick, Kameshwar, Yadavalli, and David P. Pappas

TL;DR
This paper demonstrates a room-temperature, high-precision frequency tuning method for superconducting transmon qubits using alternating-bias assisted annealing, improving coherence and gate fidelity for scalable quantum processors.
Contribution
It introduces a novel ABAA technique for precise, post-fabrication frequency tuning of transmon qubits with minimal coherence impact, suitable for large-scale quantum computing.
Findings
Achieved 7.7 MHz tuning precision on hundreds of qubits.
Improved qubit coherence after ABAA tuning.
Demonstrated high-fidelity two-qubit gates with over 99.5% fidelity.
Abstract
Superconducting quantum processors are one of the leading platforms for realizing scalable fault-tolerant quantum computation (FTQC). The recent demonstration of post-fabrication tuning of Josephson junctions using alternating-bias assisted annealing (ABAA) technique and a reduction in junction loss after ABAA illuminates a promising path towards precision tuning of qubit frequency while maintaining high coherence. Here, we demonstrate precision tuning of the maximum transition frequency () of tunable transmon qubits by performing ABAA at room temperature using commercially available test equipment. We characterize the impact of junction relaxation and aging on resistance spread after tuning, and demonstrate a frequency equivalent tuning precision of 7.7 MHz () based on targeted resistance tuning on hundreds of qubits, with a…
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Taxonomy
TopicsMagneto-Optical Properties and Applications · Quantum Information and Cryptography · Quantum optics and atomic interactions
