English

Error-detectable bosonic entangling gates with a noisy ancilla

Quantum Physics 2022-12-22 v1

Abstract

Bosonic quantum error correction has proven to be a successful approach for extending the coherence of quantum memories, but to execute deep quantum circuits, high-fidelity gates between encoded qubits are needed. To that end, we present a family of error-detectable two-qubit gates for a variety of bosonic encodings. From a new geometric framework based on a "Bloch sphere" of bosonic operators, we construct ZZL(θ)ZZ_L(\theta) and eSWAP(θ)\text{eSWAP}(\theta) gates for the binomial, 4-legged cat, dual-rail and several other bosonic codes. The gate Hamiltonian is simple to engineer, requiring only a programmable beamsplitter between two bosonic qubits and an ancilla dispersively coupled to one qubit. This Hamiltonian can be realized in circuit QED hardware with ancilla transmons and microwave cavities. The proposed theoretical framework was developed for circuit QED but is generalizable to any platform that can effectively generate this Hamiltonian. Crucially, one can also detect first-order errors in the ancilla and the bosonic qubits during the gates. We show that this allows one to reach error-detected gate fidelities at the 10410^{-4} level with today's hardware, limited only by second-order hardware errors.

Keywords

Cite

@article{arxiv.2212.11196,
  title  = {Error-detectable bosonic entangling gates with a noisy ancilla},
  author = {Takahiro Tsunoda and James D. Teoh and William D. Kalfus and Stijn J. de Graaf and Benjamin J. Chapman and Jacob C. Curtis and Neel Thakur and Steven M. Girvin and Robert J. Schoelkopf},
  journal= {arXiv preprint arXiv:2212.11196},
  year   = {2022}
}

Comments

21 pages, 8 figures

R2 v1 2026-06-28T07:47:21.065Z