A counterpropagating pair of opposite-charge Bessel vortex beams creates a three-dimensional ponderomotive lattice that can confine circular Rydberg atoms at its intensity minima.
Confinement of ultracold atoms in a Laguerre-Gaussian laser beam created with diffractive optics
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abstract
We report 2D confinement of Rb 87 atoms in a Laguerre-Gaussian laser beam. Changing of the sign of the detuning from the atomic resonance dramatically alters the geometry of the confinement. With the laser detuned to the blue, the atoms are confined to the dark, central node of the Laguerre-Gaussian laser mode. This trapping method leads to low ac Stark shifts to the atomic levels. Alternatively, by detuning the laser to the red of the resonance, we confine atoms to the high intensity outer ring in a multiply-connected, toroidal configuration. We model the confined atoms to determine azimuthal intensity variations of the trapping laser, caused by slight misalignments of the Laguerre-Gaussian mode generating optics.
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Three-dimensional trapping of circular Rydberg atoms by a superimposed vortex light beam
A counterpropagating pair of opposite-charge Bessel vortex beams creates a three-dimensional ponderomotive lattice that can confine circular Rydberg atoms at its intensity minima.