English

State-dependent Gaussian gate set using an optical tweezer for trapped ions

Quantum Physics 2026-06-30 v1

Abstract

We demonstrate a state-dependent Gaussian gate set on the motional modes of trapped 40^{40}Ca+^+ ions, realized with an optical tweezer. Dynamic control of the tweezer intensity and position enables local displacement, squeezing, phase-space rotation, and beamsplitter operations, constituting a complete gate set. By varying the tweezer position relative to the ion, we show how the strength of each operation is set by the corresponding spatial derivative of the local optical potential. We further demonstrate the inherent dependence of each operation on the ion's internal state and use coherent spin-motion coupling provided by the tweezer to create a motional cat state. Our work establishes optical tweezers as a unified and local resource for continuous-variable quantum control in trapped ion systems.

Keywords

Cite

@article{arxiv.2606.31864,
  title  = {State-dependent Gaussian gate set using an optical tweezer for trapped ions},
  author = {Philip Leindecker and Luka Milanovic and Tanja Behrle and Edgar Brucke and Matteo Marinelli and Julian Schmidt and Jonathan Home and Cornelius Hempel},
  journal= {arXiv preprint arXiv:2606.31864},
  year   = {2026}
}

Comments

5 pages in the main text (3 figures); 12 pages total (5 figures)