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Tomographic Description of a Quantum Wave Packet in an Accelerated Frame

Authors :
Sergio De Nicola
Renato Fedele
Dušan Jovanović
Margarita A. Man’ko
Vladimir I. Man’ko
Source :
Entropy, Vol 23, Iss 5, p 636 (2021)
Publication Year :
2021
Publisher :
MDPI AG, 2021.

Abstract

The tomography of a single quantum particle (i.e., a quantum wave packet) in an accelerated frame is studied. We write the Schrödinger equation in a moving reference frame in which acceleration is uniform in space and an arbitrary function of time. Then, we reduce such a problem to the study of spatiotemporal evolution of the wave packet in an inertial frame in the presence of a homogeneous force field but with an arbitrary time dependence. We demonstrate the existence of a Gaussian wave packet solution, for which the position and momentum uncertainties are unaffected by the uniform force field. This implies that, similar to in the case of a force-free motion, the uncertainty product is unaffected by acceleration. In addition, according to the Ehrenfest theorem, the wave packet centroid moves according to classic Newton’s law of a particle experiencing the effects of uniform acceleration. Furthermore, as in free motion, the wave packet exhibits a diffraction spread in the configuration space but not in momentum space. Then, using Radon transform, we determine the quantum tomogram of the Gaussian state evolution in the accelerated frame. Finally, we characterize the wave packet evolution in the accelerated frame in terms of optical and simplectic tomogram evolution in the related tomographic space.

Details

Language :
English
ISSN :
10994300
Volume :
23
Issue :
5
Database :
Directory of Open Access Journals
Journal :
Entropy
Publication Type :
Academic Journal
Accession number :
edsdoj.03beaf03a55942ec82716fd28f11b8d9
Document Type :
article
Full Text :
https://doi.org/10.3390/e23050636