Far-from-equilibrium noise-heating and laser-cooling dynamics in radio-frequency Paul traps

A. Maitra, D. Leibfried, D. Ullmo, and H. Landa
Phys. Rev. A 99, 043421 – Published 23 April 2019

Abstract

We study the stochastic dynamics of a particle in a periodically driven potential. For atomic ions trapped in radio-frequency Paul traps, noise heating and laser cooling typically act slowly in comparison with the unperturbed motion. These stochastic processes can be accounted for in terms of a probability distribution defined over the action variables, which would otherwise be conserved within the regular regions of the Hamiltonian phase space. We present a semiclassical theory of low-saturation laser cooling applicable from the limit of low-amplitude motion to large-amplitude motion, accounting fully for the time-dependent and anharmonic trap. We employ our approach to a detailed study of the stochastic dynamics of a single ion, drawing general conclusions regarding the nonequilibrium dynamics of laser-cooled trapped ions. We predict a regime of anharmonic motion in which laser cooling becomes diffusive (i.e., it is equally likely to cool the ion as it is to heat it), and can also turn into effective heating. This implies that a high-energy ion could be easily lost from the trap despite being laser cooled; however, we find that this loss can be counteracted using a laser detuning much larger than Doppler detuning.

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  • Received 26 August 2018
  • Revised 20 March 2019

DOI:https://doi.org/10.1103/PhysRevA.99.043421

©2019 American Physical Society

Physics Subject Headings (PhySH)

Atomic, Molecular & Optical

Authors & Affiliations

A. Maitra1, D. Leibfried2, D. Ullmo1, and H. Landa3,*

  • 1LPTMS, CNRS, Université Paris-Sud, Université Paris-Saclay, 91405 Orsay, France
  • 2National Institute of Standards and Technology, 325 Broadway, Boulder, Colorado 80305, USA
  • 3Institut de Physique Théorique, Université Paris-Saclay, CEA, CNRS, 91191 Gif-sur-Yvette, France

  • *haggaila@gmail.com

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Issue

Vol. 99, Iss. 4 — April 2019

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