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Manipulation of quantum particles in rapidly oscillating potentials by inducing phase hops

arXiv
Authors: Armin Ridinger, Christoph Weiss

Year

2009

Paper ID

9226

Status

Preprint

Abstract Read

~2 min

Abstract Words

87

Citations

N/A

Abstract

Analytical calculations show that the mean-motion of a quantum particle trapped by a rapidly oscillating potential can be significantly manipulated by inducing phase hops, i.e., by instantaneously changing the potential's phase. A phase hop can be visualized as being the result of a collision with an imaginary particle which can be controlled. Several phase hops can have accumulating effects on the particle's mean-motion, even if they transform the particle's Hamiltonian into its initial one. The theoretical predictions are verified by numerical simulations for the one-dimensional Paul-trap.

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  • Analytical calculations show that the mean-motion of a quantum particle trapped by a rapidly oscillating potential can be significantly manipulated by inducing phase hops...

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