arXiv · 2305.06725
Fast, high-fidelity addressed single-qubit gates using efficient composite pulse sequences
Abstract
We use electronic microwave control methods to implement addressed single-qubit gates with high speed and fidelity, for $^{43}\text{Ca}^{+}$ hyperfine "atomic clock" qubits in a cryogenic (100K) surface trap. For a single qubit, we benchmark an error of $1.5$ $\times$ $10^{-6}$ per Clifford gate (implemented using $600~\text{ns}$ $\pi/2$-pulses). For two qubits in the same trap zone (ion separation $5~\mu\text{m}$), we use a spatial microwave field gradient, combined with an efficient 4-pulse scheme, to implement independent addressed gates. Parallel randomized benchmarking on both qubits yields an average error $3.4$ $\times$ $10^{-5}$ per addressed $\pi/2$-gate. The scheme scales theoretically to larger numbers of qubits in a single register.
Explore related subjects
Keep this discovery
A. D. Leu, M. F. Gely, M. A. Weber, M. C. Smith, D. P. Nadlinger, D. M. Lucas. 2023-05-11. Fast, high-fidelity addressed single-qubit gates using efficient composite pulse sequences. https://doi.org/10.1103/physrevlett.131.120601
Cite the original work for its findings. Save a collection to share your selection of sources.