Published February 2015 | Version v1
Journal article

Full quantum mechanical analysis of atomic three-grating Mach–Zehnder interferometry

  • 1. Instituto de Física Fundamental (IFF-CSIC), Serrano 123, 28006 Madrid (Spain)
  • 2. Faculty of Civil Engineering, University of Belgrade, Bulevar Kralja Aleksandra 73, 11000 Belgrade (Serbia)
  • 3. Institute of Physics, University of Belgrade, Pregrevica 118, 11080 Belgrade (Serbia)

Description

Atomic three-grating Mach–Zehnder interferometry constitutes an important tool to probe fundamental aspects of the quantum theory. There is, however, a remarkable gap in the literature between the oversimplified models and robust numerical simulations considered to describe the corresponding experiments. Consequently, the former usually lead to paradoxical scenarios, such as the wave–particle dual behavior of atoms, while the latter make difficult the data analysis in simple terms. Here these issues are tackled by means of a simple grating working model consisting of evenly-spaced Gaussian slits. As is shown, this model suffices to explore and explain such experiments both analytically and numerically, giving a good account of the full atomic journey inside the interferometer, and hence contributing to make less mystic the physics involved. More specifically, it provides a clear and unambiguous picture of the wavefront splitting that takes place inside the interferometer, illustrating how the momentum along each emerging diffraction order is well defined even though the wave function itself still displays a rather complex shape. To this end, the local transverse momentum is also introduced in this context as a reliable analytical tool. The splitting, apart from being a key issue to understand atomic Mach–Zehnder interferometry, also demonstrates at a fundamental level how wave and particle aspects are always present in the experiment, without incurring in any contradiction or interpretive paradox. On the other hand, at a practical level, the generality and versatility of the model and methodology presented, makes them suitable to attack analogous problems in a simple manner after a convenient tuning. - Highlights: • A simple model is proposed to analyze experiments based on atomic Mach–Zehnder interferometry. • The model can be easily handled both analytically and computationally. • A theoretical analysis based on the combination of the position and momentum representations is considered. • Wave and particle aspects are shown to coexist within the same experiment, thus removing the old wave-corpuscle dichotomy. • A good agreement between numerical simulations and experimental data is found without appealing to best-fit procedures

Availability note (English)

Available from http://dx.doi.org/10.1016/j.aop.2014.11.012

Additional details

Identifiers

DOI
10.1016/j.aop.2014.11.012;
arXiv
arXiv:1402.3885v2;
PII
S0003-4916(14)00332-7;

Publishing Information

Journal Title
Annals of Physics (New York)
Journal Volume
353
Journal Page Range
p. 205-221
ISSN
0003-4916
CODEN
APNYA6

INIS

Country of Publication
United States
Country of Input or Organization
International Atomic Energy Agency (IAEA)
INIS RN
47017136
Subject category
S71: CLASSICAL AND QUANTUM MECHANICS, GENERAL PHYSICS;
Descriptors DEI
COMPUTERIZED SIMULATION; DATA ANALYSIS; INTERFEROMETRY; MACH-ZEHNDER INTERFEROMETER; QUANTUM MECHANICS; TRANSVERSE MOMENTUM
Descriptors DEC
DATA PROCESSING; INTERFEROMETERS; LINEAR MOMENTUM; MEASURING INSTRUMENTS; MECHANICS; PROCESSING; SIMULATION

Optional Information

Copyright
Copyright (c) 2014 Elsevier Science B.V., Amsterdam, The Netherlands, All rights reserved.