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Asymmetric double-well potential for single-atom interferometry

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posted on 2024-07-26, 14:37 authored by A. I. Sidorov, Bryan DaltonBryan Dalton, S. M. Whitlock, F. Scharnberg
We consider the evolution of a single-atom wave function in a time-dependent double-well interferometer in the presence of a spatially asymmetric potential. We examine a case where a single trapping potential is split into an asymmetric double well and then recombined again. The interferometer involves a measurement of the first excited state population as a sensitive measure of the asymmetric potential. Based on a two-mode approximation a Bloch vector model provides a simple and satisfactory description of the dynamical evolution. We discuss the roles of adiabaticity and asymmetry in the double-well interferometer. The Bloch model allows us to account for the effects of asymmetry on the excited state population throughout the interferometric process and to choose the appropriate splitting, holding, and recombination periods in order to maximize the output signal. We also compare the outcomes of the Bloch vector model with the results of numerical simulations of the multistate time-dependent Schroedinger equation.

Funding

Australian Research Council

History

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ISSN

1050-2947

Journal title

Physical Review A - Atomic, Molecular, and Optical Physics

Volume

74

Issue

2

Article number

article no. 023612

Pagination

023612-

Publisher

American Physical Society

Copyright statement

Copyright © 2006 The American Physical Society. The published version is reproduced in accordance with the copyright policy of the publisher.

Language

eng

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