English

Floquet-engineered fast SNAP gates in weakly coupled circuit-QED systems

Quantum Physics 2025-10-02 v2

Abstract

Superconducting cavities with high quality factors, coupled to a fixed-frequency transmon, provide a state-of-the-art platform for quantum information storage and manipulation. The commonly used selective number-dependent arbitrary phase (SNAP) gate faces significant challenges in ultra-high-coherence cavities, where the weak dispersive shifts necessary for preserving high coherence typically result in prolonged gate times. Here, we propose a protocol to achieve high-fidelity SNAP gates that are orders of magnitude faster than the standard implementation, surpassing the speed limit set by the bare dispersive shift. We achieve this enhancement by dynamically amplifying the dispersive coupling via sideband interactions, followed by quantum optimal control on the Floquet-engineered system. We also present a unified perturbation theory that explains both the gate acceleration and the associated benign drive-induced decoherence, corroborated by Floquet-Markov simulations. These results pave the way for the experimental realization of high-fidelity, selective control of weakly coupled, high-coherence cavities, and expanding the scope of optimal control techniques to a broader class of Floquet quantum systems.

Keywords

Cite

@article{arxiv.2506.03034,
  title  = {Floquet-engineered fast SNAP gates in weakly coupled circuit-QED systems},
  author = {Xinyuan You and Andy C. Y. Li and Tanay Roy and Shaojiang Zhu and Alexander Romanenko and Anna Grassellino and Yao Lu and Srivatsan Chakram},
  journal= {arXiv preprint arXiv:2506.03034},
  year   = {2025}
}

Comments

19 pages, 9 figures

R2 v1 2026-07-01T02:57:16.828Z