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Two-dimensional ion crystals in a hybrid optical...
Journal article

Two-dimensional ion crystals in a hybrid optical cavity trap for quantum information processing

Abstract

We numerically investigate a hybrid trapping architecture for two-dimensional (2D) ion crystals using static electrode voltages and optical cavity fields for in-plane and out-of-plane confinements, respectively. By studying the stability of 2D crystals against 2D-3D structural phase transitions, we identify the necessary trapping parameters for ytterbium ions. Multiple equilibrium configurations for 2D crystals are possible, and we analyze their stability by estimating potential barriers between them. We find that scattering to antitrapping states limits the trapping lifetime, which is consistent with recent experiments employing other optical trapping architectures. These 2D ion crystals offer an excellent platform for quantum simulation of frustrated spin systems, benefiting from their 2D triangular lattice structure and phonon-mediated spin-spin interactions. Quantum information processing with tens of ions is feasible in this scheme with current technologies.

Authors

Sun Z; Teoh YH; Rajabi F; Islam R

Journal

Physical Review A, Vol. 109, No. 3,

Publisher

American Physical Society (APS)

Publication Date

March 1, 2024

DOI

10.1103/physreva.109.032426

ISSN

2469-9926

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