Numerical simulations of three-dimensional ion crystal dynamics in a Penning trap using the fast multipole method Journal Article uri icon

Overview

abstract

  • We simulate the dynamics, including laser cooling, of three-dimensional (3-D) ion crystals confined in a Penning trap using a newly developed molecular dynamics-like code. The numerical integration of the ions’ equations of motion is accelerated using the fast multipole method to calculate the Coulomb interaction between ions, which allows us to efficiently study large ion crystals with thousands of ions. In particular, we show that the simulation time scales linearly with ion number, rather than with the square of the ion number. By treating the ions’ absorption of photons as a Poisson process, we simulate individual photon scattering events to study laser cooling of 3-D ellipsoidal ion crystals. Initial simulations suggest that these crystals can be efficiently cooled to ultracold temperatures, aided by the mixing of the easily cooled axial motional modes with the low frequency planar modes. In our simulations of a spherical crystal of 1000 ions, the planar kinetic energy is cooled to several millikelvin in a few milliseconds while the axial kinetic energy and total potential energy are cooled even further. This suggests that 3-D ion crystals could be well suited as platforms for future quantum science experiments.

publication date

  • April 1, 2025

Date in CU Experts

  • February 3, 2026 9:54 AM

Full Author List

  • Zaris J; Johnson W; Shankar A; Bollinger JJ; Parker SE

author count

  • 5

Other Profiles

International Standard Serial Number (ISSN)

  • 0022-3778

Electronic International Standard Serial Number (EISSN)

  • 1469-7807

Additional Document Info

volume

  • 91

issue

  • 2

number

  • E53