English

Radial two-dimensional ion crystals in a linear Paul trap

Quantum Physics 2021-07-13 v5 Atomic Physics

Abstract

We experimentally study two-dimensional (2D) Coulomb crystals in the "radial-2D" phase of a linear Paul trap. This phase is identified by a 2D ion lattice aligned entirely with the radial plane and is created by imposing a large ratio of axial to radial trapping potentials. Using arrays of up to 19 171^{171}Yb+^+ ions, we demonstrate that the structural phase boundaries and vibrational mode frequencies of such crystals are well-described by the pseudopotential approximation, despite the time-dependent ion positions driven by intrinsic micromotion. We further observe that micromotion-induced heating of the radial-2D crystal is confined to the radial plane. Finally, we verify that the transverse motional modes, which are used in most ion-trap quantum simulation schemes, remain decoupled and cold in this geometry. Our results establish radial-2D ion crystals as a robust experimental platform for realizing a variety of theoretical proposals in quantum simulation and computation.

Keywords

Cite

@article{arxiv.2012.12766,
  title  = {Radial two-dimensional ion crystals in a linear Paul trap},
  author = {Marissa D'Onofrio and Yuanheng Xie and A. J. Rasmusson and Evangeline Wolanski and Jiafeng Cui and Philip Richerme},
  journal= {arXiv preprint arXiv:2012.12766},
  year   = {2021}
}

Comments

8 pages, 5 figures, including supplementary information. Final version

R2 v1 2026-06-23T21:18:14.816Z