4.2 Article

Engineering fast bias-preserving gates on stabilized cat qubits

Journal

PHYSICAL REVIEW RESEARCH
Volume 4, Issue 1, Pages -

Publisher

AMER PHYSICAL SOC
DOI: 10.1103/PhysRevResearch.4.013082

Keywords

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Funding

  1. ARO [W911NF-18-1-0020, W911NF-18-1-0212]
  2. ARO MURI [W911NF-16-1-0349]
  3. AFOSR MURI [FA9550-19-1-0399]
  4. NSF [EFMA-1640959, OMA-1936118, EEC-1941583]
  5. NTT Research
  6. Packard Foundation [2013-39273]

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This paper explores the method of implementing fast biased gates on stabilized cat codes. By applying a leakage-suppression technique, the nonadiabatic errors are overcome, resulting in improved gate fidelity. Applying this method in concatenated quantum error correction can improve the logical error rate and reduce resource overhead, enabling more efficient implementation of fault-tolerant quantum computing.
Stabilized cat codes can provide a biased noise channel with a set of bias-preserving (BP) gates, which can significantly reduce the resource overhead for fault-tolerant quantum computing. All existing schemes of BP gates, however, require adiabatic quantum evolution, with performance limited by excitation loss and nonadiabatic errors during the adiabatic gates. In this paper, we apply a derivative-based leakage-suppression technique to overcome nonadiabatic errors, so that we can implement fast BP gates on Kerr-cat qubits with improved gate fidelity while maintaining high noise bias. When applied to concatenated quantum error correction, the fast BP gates not only can improve the logical error rate but also can reduce resource overhead, which enables more efficient implementation of fault-tolerant quantum computing.

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