Investigating Quantum Coherence by Negative Excursions of the Wigner Quasi-Distribution

Quantum information and quantum communication are both strongly based on concepts of quantum superposition and entanglement. Entanglement allows distinct bodies, that share a common origin or that have interacted in the past, to continue to be described by the same wave function until evolution is c...

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Main Authors: Mauro Ballicchia, David K. Ferry, Mihail Nedjalkov, Josef Weinbub
Format: Article
Language:English
Published: MDPI AG 2019-03-01
Series:Applied Sciences
Subjects:
Online Access:https://www.mdpi.com/2076-3417/9/7/1344
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spelling doaj-2ed9067fb1a94e10b7e3d49a406543c02020-11-24T22:30:00ZengMDPI AGApplied Sciences2076-34172019-03-0197134410.3390/app9071344app9071344Investigating Quantum Coherence by Negative Excursions of the Wigner Quasi-DistributionMauro Ballicchia0David K. Ferry1Mihail Nedjalkov2Josef Weinbub3Department of Information Engineering, Università Politecnica delle Marche, 60131 Ancona, ItalySchool of Electrical, Computer, and Energy Engineering, Arizona State University, Tempe, AZ 85287-5706, USAInstitute for Microelectronics, TU Wien, 1040 Wien, AustriaChristian Doppler Laboratory for High Performance TCAD, Institute for Microelectronics, TU Wien, 1040 Wien, AustriaQuantum information and quantum communication are both strongly based on concepts of quantum superposition and entanglement. Entanglement allows distinct bodies, that share a common origin or that have interacted in the past, to continue to be described by the same wave function until evolution is coherent. So, there is an equivalence between coherence and entanglement. In this paper, we show the relation between quantum coherence and quantum interference and the negative parts of the Wigner quasi-distribution, using the Wigner signed-particle formulation. A simple physical problem consisting of electrons in a nanowire interacting with the potential of a repulsive dopant placed in the center of it creates a quasi two-slit electron system that separates the wave function into two entangled branches. The analysis of the Wigner quasi-distribution of this problem establishes that its negative part is principally concentrated in the region after the dopant between the two entangled branches, maintaining the coherence between them. Moreover, quantum interference is shown in this region both in the positive and in the negative part of the Wigner function and is produced by the superposition of Wigner functions evaluated at points of the momentum space that are symmetric with respect to the initial momentum of the injected electrons.https://www.mdpi.com/2076-3417/9/7/1344coherenceentanglementWigner functionquasi-distributionnon-diagonal Wigner statessigned-particlesnanowire
collection DOAJ
language English
format Article
sources DOAJ
author Mauro Ballicchia
David K. Ferry
Mihail Nedjalkov
Josef Weinbub
spellingShingle Mauro Ballicchia
David K. Ferry
Mihail Nedjalkov
Josef Weinbub
Investigating Quantum Coherence by Negative Excursions of the Wigner Quasi-Distribution
Applied Sciences
coherence
entanglement
Wigner function
quasi-distribution
non-diagonal Wigner states
signed-particles
nanowire
author_facet Mauro Ballicchia
David K. Ferry
Mihail Nedjalkov
Josef Weinbub
author_sort Mauro Ballicchia
title Investigating Quantum Coherence by Negative Excursions of the Wigner Quasi-Distribution
title_short Investigating Quantum Coherence by Negative Excursions of the Wigner Quasi-Distribution
title_full Investigating Quantum Coherence by Negative Excursions of the Wigner Quasi-Distribution
title_fullStr Investigating Quantum Coherence by Negative Excursions of the Wigner Quasi-Distribution
title_full_unstemmed Investigating Quantum Coherence by Negative Excursions of the Wigner Quasi-Distribution
title_sort investigating quantum coherence by negative excursions of the wigner quasi-distribution
publisher MDPI AG
series Applied Sciences
issn 2076-3417
publishDate 2019-03-01
description Quantum information and quantum communication are both strongly based on concepts of quantum superposition and entanglement. Entanglement allows distinct bodies, that share a common origin or that have interacted in the past, to continue to be described by the same wave function until evolution is coherent. So, there is an equivalence between coherence and entanglement. In this paper, we show the relation between quantum coherence and quantum interference and the negative parts of the Wigner quasi-distribution, using the Wigner signed-particle formulation. A simple physical problem consisting of electrons in a nanowire interacting with the potential of a repulsive dopant placed in the center of it creates a quasi two-slit electron system that separates the wave function into two entangled branches. The analysis of the Wigner quasi-distribution of this problem establishes that its negative part is principally concentrated in the region after the dopant between the two entangled branches, maintaining the coherence between them. Moreover, quantum interference is shown in this region both in the positive and in the negative part of the Wigner function and is produced by the superposition of Wigner functions evaluated at points of the momentum space that are symmetric with respect to the initial momentum of the injected electrons.
topic coherence
entanglement
Wigner function
quasi-distribution
non-diagonal Wigner states
signed-particles
nanowire
url https://www.mdpi.com/2076-3417/9/7/1344
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