English

Fault-tolerant multiqubit geometric entangling gates using photonic cat-state qubits

Quantum Physics 2022-09-05 v5

Abstract

We propose a theoretical protocol to implement multiqubit geometric gates (i.e., the M{\o}lmer-S{\o}rensen gate) using photonic cat-state qubits. These cat-state qubits stored in high-QQ resonators are promising for hardware-efficient universal quantum computing. Specifically, in the limit of strong two-photon drivings, phase-flip errors of the cat-state qubits are effectively suppressed, leaving only a bit-flip error to be corrected. Because this dominant error commutes with the evolution operator, our protocol preserves the error bias, and, thus, can lower the code-capacity threshold for error correction. A geometric evolution guarantees the robustness of the protocol against stochastic noise along the evolution path. Moreover, by changing detunings of the cavity-cavity couplings at a proper time, the protocol can be robust against parameter imperfections (e.g., the total evolution time) without introducing extra noises into the system. As a result, the gate can produce multi-mode entangled cat states in a short time with high fidelities.

Keywords

Cite

@article{arxiv.2109.04643,
  title  = {Fault-tolerant multiqubit geometric entangling gates using photonic cat-state qubits},
  author = {Ye-Hong Chen and Roberto Stassi and Wei Qin and Adam Miranowicz and Franco Nori},
  journal= {arXiv preprint arXiv:2109.04643},
  year   = {2022}
}

Comments

16 pages, 8 figures

R2 v1 2026-06-24T05:50:52.213Z