Quantum transport and the phase space structure of the Wightman functions

Abstract We study the phase space structure of exact quantum Wightman functions in spatially homogeneous, temporally varying systems. In addition to the usual mass shells, the Wightman functions display additional coherence shells around zero frequency k 0 = 0, which carry the information of the loc...

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Main Authors: Henri Jukkala, Kimmo Kainulainen, Olli Koskivaara
Format: Article
Language:English
Published: SpringerOpen 2020-01-01
Series:Journal of High Energy Physics
Subjects:
Online Access:https://doi.org/10.1007/JHEP01(2020)012
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spelling doaj-cf92aa0f55d94f5c896b9771f93515b82021-01-03T12:03:42ZengSpringerOpenJournal of High Energy Physics1029-84792020-01-012020112810.1007/JHEP01(2020)012Quantum transport and the phase space structure of the Wightman functionsHenri Jukkala0Kimmo Kainulainen1Olli Koskivaara2Department of Physics, University of JyväskyläDepartment of Physics, University of JyväskyläDepartment of Physics, University of JyväskyläAbstract We study the phase space structure of exact quantum Wightman functions in spatially homogeneous, temporally varying systems. In addition to the usual mass shells, the Wightman functions display additional coherence shells around zero frequency k 0 = 0, which carry the information of the local quantum coherence of particle-antiparticle pairs. We find also other structures, which encode non-local correlations in time, and discuss their role and decoherence. We give a simple derivation of the cQPA formalism, a set of quantum transport equations, that can be used to study interacting systems including the local quantum coherence. We compute quantum currents created by a temporal change in a particle’s mass, comparing the exact Wightman function approach, the cQPA and the semiclassical methods. We find that the semiclassical approximation, which is fully encompassed by the cQPA, works surprisingly well even for very sharp temporal features. This is encouraging for the application of semiclassical methods in electroweak baryogenesis with strong phase transitions.https://doi.org/10.1007/JHEP01(2020)012Thermal Field TheoryCP violationQuantum Dissipative Systems
collection DOAJ
language English
format Article
sources DOAJ
author Henri Jukkala
Kimmo Kainulainen
Olli Koskivaara
spellingShingle Henri Jukkala
Kimmo Kainulainen
Olli Koskivaara
Quantum transport and the phase space structure of the Wightman functions
Journal of High Energy Physics
Thermal Field Theory
CP violation
Quantum Dissipative Systems
author_facet Henri Jukkala
Kimmo Kainulainen
Olli Koskivaara
author_sort Henri Jukkala
title Quantum transport and the phase space structure of the Wightman functions
title_short Quantum transport and the phase space structure of the Wightman functions
title_full Quantum transport and the phase space structure of the Wightman functions
title_fullStr Quantum transport and the phase space structure of the Wightman functions
title_full_unstemmed Quantum transport and the phase space structure of the Wightman functions
title_sort quantum transport and the phase space structure of the wightman functions
publisher SpringerOpen
series Journal of High Energy Physics
issn 1029-8479
publishDate 2020-01-01
description Abstract We study the phase space structure of exact quantum Wightman functions in spatially homogeneous, temporally varying systems. In addition to the usual mass shells, the Wightman functions display additional coherence shells around zero frequency k 0 = 0, which carry the information of the local quantum coherence of particle-antiparticle pairs. We find also other structures, which encode non-local correlations in time, and discuss their role and decoherence. We give a simple derivation of the cQPA formalism, a set of quantum transport equations, that can be used to study interacting systems including the local quantum coherence. We compute quantum currents created by a temporal change in a particle’s mass, comparing the exact Wightman function approach, the cQPA and the semiclassical methods. We find that the semiclassical approximation, which is fully encompassed by the cQPA, works surprisingly well even for very sharp temporal features. This is encouraging for the application of semiclassical methods in electroweak baryogenesis with strong phase transitions.
topic Thermal Field Theory
CP violation
Quantum Dissipative Systems
url https://doi.org/10.1007/JHEP01(2020)012
work_keys_str_mv AT henrijukkala quantumtransportandthephasespacestructureofthewightmanfunctions
AT kimmokainulainen quantumtransportandthephasespacestructureofthewightmanfunctions
AT ollikoskivaara quantumtransportandthephasespacestructureofthewightmanfunctions
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