A Weyl function approach to matter-wave coherence and Talbot-Lau effects

dc.creatorWu, Saijun
dc.creatorStriehl, Pierre S.
dc.creatorPrentiss, Mara G.
dc.date2007-10-29
dc.date2007-12-09
dc.date.accessioned2026-07-07T08:47:49Z
dc.date.available2026-07-07T08:47:49Z
dc.descriptionWeyl functions conveniently describe the evolution of wave coherences in periodic or quadratic potentials. In this work we use Weyl functions to study the ``Talbot-Lau effect'' in a time-domain matter-wave interferometer. A ``displacement diagram'' is introduced to analyze and calculate the matter-wave interference for an atomic cloud in a quadratic potential that interacts with a sequence of short optical standing wave pulses producing an atomic grating echo. Unlike previous treatments, this new approach allows the atomic ensemble to have an arbitrary initial phase-space distribution, and the standing wave grating vectors to span three dimensions. Several examples are discussed to illustrate the convenience of the diagrammatic technique including the following: a two-dimensional Talbot-Lau effect, the shift in the echo time and the recoil phase for the interferometer perturbed by a quadratic potential; and the realization of a time-domain ``Lau effect'' using a pulsed harmonic potential. The diagrammatic technique is applicable to diffraction gratings with arbitrary grating transmission functions. We conclude the paper with a general discussion on the Weyl function representations of matter-wave coherence, and relate the conservation of matter-wave coherence with the conservation of purity that distinguishes decoherence effects from dephasing effects.
dc.description38 pages, 17 figures
dc.identifierhttps://arxiv.org/abs/0710.5479
dc.identifierhttp://arxiv.org/abs/0710.5479
dc.identifier.urihttp://salesiana.dossiersoluciones.com/handle/123456789/143732
dc.subjectAtomic Physics
dc.titleA Weyl function approach to matter-wave coherence and Talbot-Lau effects
dc.typetext

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