Coherent transfer of the transverse momentum of an optical vortex beam to the motion of a single trapped ion
arXiv:2206.04894 · doi:10.1103/PhysRevLett.129.263603
Abstract
We demonstrate the excitation, using a structured light beam carrying orbital angular momentum, of the center of mass motion of a single atom in the transverse direction to the beam's propagation. This interaction is achieved with a vortex beam carrying one unit of orbital angular momentum and one unit of spin/polarization angular momentum. Using a singly charged Ca ion, cooled near the ground state of motion in the 3D harmonic potential of a Paul trap, we probe the narrow S to D transition near on its motional sidebands to quantify the momentum transfer. Exchange of quanta in the perpendicular direction to the beam's wave vector is observed in case of the vortex shaped beam, in strong contrast to the absence of this spin-motion coupling for the case of a Gaussian beam. We characterize the coherent interaction by an effective transverse Lamb-Dicke factor which is in agreement with our theoretical prediction
main text: 4 pages, 4 figures. supplementary material: 4 pages, 4 figures
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