Implementing and characterizing high-fidelity two-qubit gates with long-distance transmon coupler
ORAL
Abstract
High-fidelity two-qubit gates are an essential requirement for any quantum computing application. However, as two-qubit-gate fidelities approach the level of single-qubit-gate fidelities, standard characterization tools, such as interleaved randomized benchmarking, become unreliable. In a device featuring the long-distance transmon coupler, we have achieved a controlled-Z (CZ) gate with (99.81 ± 0.02)% fidelity [1]. To improve the estimate of this fidelity, we utilize iterative interleaved randomized benchmarking [2], which amplifies the CZ gate error and additionally reveals coherent errors. We furthermore compare the fidelity estimate to a detailed CZ gate error-budget. We see that the fidelity is limited by the qubit coherence rather than the coupler coherence, which we attribute to having a floating transmon as a coupler.
[1] F. Marxer et al., arXiv preprint arXiv:2208.09460
[2] S. Sheldon et al., Phys. Rev. A 93, 012301 (2016)
[1] F. Marxer et al., arXiv preprint arXiv:2208.09460
[2] S. Sheldon et al., Phys. Rev. A 93, 012301 (2016)
*The work was partly supported by the European Innovation Council (EIC) under Prometheus (grant No. 959521), Business Finland (grant No. 7547/31/2021), and by the German Federal Ministry of Education and Research (BMBF) under Q-Exa (grant No. 13N16062), QSolid (grant No. 13N16161), and MUNIQC-SC (grant No. 13N16185).
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Publication: F. Marxer et al., 'Long-distance transmon coupler with CZ gate fidelity above 99.8%', arXiv preprint arXiv:2208.09460 (2022)
Presenters
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Fabian Marxer
- IQM Quantum Computers
- IQM