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Cooling a single atom in an optical tweezer to its quantum ground state

Atomic Physics 2012-11-30 v2 Quantum Physics

Abstract

We report cooling of a single neutral atom to its three-dimensional vibrational ground state in an optical tweezer. After employing Raman sideband cooling for tens of milliseconds, we measure via sideband spectroscopy a three-dimensional ground-state occupation of ~90%. We further observe coherent control of the spin and motional state of the trapped atom. Our demonstration shows that an optical tweezer, formed simply by a tightly focused beam of light, creates sufficient confinement for efficient sideband cooling. This source of ground-state neutral atoms will be instrumental in numerous quantum simulation and logic applications that require a versatile platform for storing and manipulating ultracold single neutral atoms. For example, these results will improve current optical tweezer experiments studying atom-photon coupling and Rydberg quantum logic gates, and could provide new opportunities such as rapid production of single dipolar molecules or quantum simulation in tweezer arrays.

Keywords

Cite

@article{arxiv.1209.2087,
  title  = {Cooling a single atom in an optical tweezer to its quantum ground state},
  author = {Adam M. Kaufman and Brian J. Lester and Cindy A. Regal},
  journal= {arXiv preprint arXiv:1209.2087},
  year   = {2012}
}

Comments

Updated intro, title