English

Breaking the entangling gate speed limit for trapped-ion qubits using a phase-stable standing wave

Quantum Physics 2024-02-22 v2 Atomic Physics

Abstract

All laser-driven entangling operations for trapped-ion qubits have hitherto been performed without control of the optical phase of the light field, which precludes independent tuning of the carrier and motional coupling. By placing 88^{88}Sr+^+ ions in a λ=674\lambda=674 nm standing wave, whose relative position is controlled to λ/100\approx\lambda/100, we suppress the carrier coupling by a factor of 1818, while coherently enhancing the spin-motion coupling. We experimentally demonstrate that the off-resonant carrier coupling imposes a speed limit for conventional traveling-wave M{\o}lmer-S{\o}rensen gates; we use the standing wave to surpass this limit and achieve a gate duration of 15 μ15\ \mus, restricted by the available laser power.

Keywords

Cite

@article{arxiv.2305.03450,
  title  = {Breaking the entangling gate speed limit for trapped-ion qubits using a phase-stable standing wave},
  author = {S. Saner and O. Băzăvan and M. Minder and P. Drmota and D. J. Webb and G. Araneda and R. Srinivas and D. M. Lucas and C. J. Ballance},
  journal= {arXiv preprint arXiv:2305.03450},
  year   = {2024}
}

Comments

S. Saner and O. B\u{a}z\u{a}van contributed equally to this work

R2 v1 2026-06-28T10:26:45.982Z