Localization in splitting of matter waves
- 19 September 2003
- journal article
- research article
- Published by American Physical Society (APS) in Physical Review A
- Vol. 68 (3) , 033607
- https://doi.org/10.1103/physreva.68.033607
Abstract
In this paper we present an analysis of how matter waves, guided as propagating modes in potential structures, are split under adiabatic conditions. The description is formulated in terms of localized states obtained through a unitary transformation acting on the mode functions. The mathematical framework results in coupled propagation equations that are decoupled in the asymptotic regions as well before as after the split. The resulting states have the advantage of describing propagation in situations, for instance matter-wave interferometers, where local perturbations make the transverse modes of the guiding potential unsuitable as a basis. The different regimes of validity of adiabatic propagation schemes based on localized versus delocalized basis states are also outlined. Nontrivial dynamics for superposition states propagating through split potential structures is investigated through numerical simulations. For superposition states the influence of longitudinal wave-packet extension on the localization is investigated and shown to be accurately described in quantitative terms using the adiabatic formulations presented here.Keywords
This publication has 40 references indexed in Scilit:
- Atom optics with hollow optical systemsPhysics Reports, 2002
- Microchip traps and Bose–Einstein condensationApplied Physics B Laser and Optics, 2002
- Growth of nanowire superlattice structures for nanoscale photonics and electronicsNature, 2002
- Ion-beam sculpting at nanometre length scalesNature, 2001
- Fabry - Perot interference in a nanotube electron waveguideNature, 2001
- Four-terminal resistance of a ballistic quantum wireNature, 2001
- Electromagnetic trapping of cold atomsReports on Progress in Physics, 2000
- Magnetic atom optics: mirrors, guides, traps, and chips for atomsJournal of Physics D: Applied Physics, 1999
- Atomic de Broglie waveguides and integrated atom-optics using permanent magnetsJournal of Optics B: Quantum and Semiclassical Optics, 1999
- Atom opticsPhysics Reports, 1994