4.5 Article

Demonstration of an All-Microwave Controlled-Phase Gate between Far-Detuned Qubits

期刊

PHYSICAL REVIEW APPLIED
卷 14, 期 4, 页码 -

出版社

AMER PHYSICAL SOC
DOI: 10.1103/PhysRevApplied.14.044039

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资金

  1. European Research Council (ERC) through the Superconducting Quantum Networks (SuperQuNet) project
  2. National Centre of Competence in Research Quantum Science and Technology (NCCR QSIT) a research instrument of the Swiss National Science Foundation (SNSF)
  3. Office of the Director of National Intelligence (ODNI), Intelligence Advanced Research Projects Activity (IARPA), via the U.S. Army Research Office [W911NF-16-1-0071]
  4. SNFS R'equip Grant [206021-170731]
  5. ETH Zurich
  6. Natural Sciences and Engineering Research Council (NSERC)
  7. Canada First Research Excellence Fund
  8. Vanier Canada Graduate Scholarships
  9. Fondation Jean-Jacques & Felicia Lopez-Loreta
  10. ETH Zurich Foundation
  11. Ministry of Education and Science of the Russian Federation of the National University of Science and Technology MISIS [K2-2017-081]
  12. Swiss National Science Foundation (SNF) [206021_170731] Funding Source: Swiss National Science Foundation (SNF)

向作者/读者索取更多资源

A challenge in building large-scale superconducting quantum processors is to find the right balance between coherence, qubit addressability, qubit-qubit coupling strength, circuit complexity, and the number of required control lines. Leading all-microwave approaches for coupling two qubits require comparatively few control lines and benefit from high coherence but suffer from frequency crowding and limited addressability in multiqubit settings. Here, we overcome these limitations by realizing an all-microwave controlled-phase gate between two transversely coupled transmon qubits that are far detuned compared to the qubit anharmonicity. The gate is activated by applying a single strong microwave tone to one of the qubits, inducing a coupling between the two-qubit vertical bar f, g > and vertical bar g, e > states, with vertical bar g >, vertical bar e >, and vertical bar f > denoting the lowest energy states of a transmon qubit. Interleaved randomized benchmarking yields a gate fidelity of 97.5 +/- 0.3% at a gate duration of 126 ns, with the dominant error source being decoherence. We model the gate in presence of the strong drive field using Floquet theory and find good agreement with our data. Our gate constitutes a promising alternative to present two-qubit gates and could have hardware scaling advantages in large-scale quantum processors as it requires neither additional drive lines nor tunable couplers.

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