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Simultaneous single-qubit driving of semiconductor spin qubits at the fault-tolerant threshold
- Source :
- Nature Communications 14, 3617 (2023)
- Publication Year :
- 2021
-
Abstract
- Practical Quantum computing hinges on the ability to control large numbers of qubits with high fidelity. Quantum dots define a promising platform due to their compatibility with semiconductor manufacturing. Moreover, high-fidelity operations above 99.9% have been realized with individual qubits, though their performance has been limited to 98.67% when driving two qubits simultaneously. Here we present single-qubit randomized benchmarking in a two-dimensional array of spin qubits, finding native gate fidelities as high as 99.992(1)%. Furthermore, we benchmark single qubit gate performance while simultaneously driving two and four qubits, utilizing a novel benchmarking technique called N-copy randomized benchmarking, designed for simple experimental implementation and accurate simultaneous gate fidelity estimation. We find two- and four-copy randomized benchmarking fidelities of 99.905(8)% and 99.34(4)% respectively, and that next-nearest neighbour pairs are highly robust to cross-talk errors. These characterizations of single-qubit gate quality are crucial for scaling up quantum information technology.<br />Comment: Main text 9 pages, 3 figures. Supp Info 21 pages, 7 figures, 8 tables
- Subjects :
- Condensed Matter - Mesoscale and Nanoscale Physics
Subjects
Details
- Database :
- arXiv
- Journal :
- Nature Communications 14, 3617 (2023)
- Publication Type :
- Report
- Accession number :
- edsarx.2109.07837
- Document Type :
- Working Paper
- Full Text :
- https://doi.org/10.1038/s41467-023-39334-3