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Semiclassical approach to mesoscopic systems: classical trajectory correlations and wave interference

This volume describes mesoscopic systems with classically chaotic dynamics using semiclassical methods which combine elements of classical dynamics and quantum interference effects. Experiments and numerical studies show that Random Matrix Theory (RMT) explains physical properties of these systems w...

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Autor principal: Waltner, Daniel
Lenguaje:eng
Publicado: Springer 2012
Materias:
Acceso en línea:https://dx.doi.org/10.1007/978-3-642-24528-2
http://cds.cern.ch/record/1433763
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author Waltner, Daniel
author_facet Waltner, Daniel
author_sort Waltner, Daniel
collection CERN
description This volume describes mesoscopic systems with classically chaotic dynamics using semiclassical methods which combine elements of classical dynamics and quantum interference effects. Experiments and numerical studies show that Random Matrix Theory (RMT) explains physical properties of these systems well. This was conjectured more than 25 years ago by Bohigas, Giannoni and Schmit for the spectral properties. Since then, it has been a challenge to understand this connection analytically.  The author offers his readers a clearly-written and up-to-date treatment of the topics covered. He extends previous semiclassical approaches that treated spectral and conductance properties. He shows that RMT results can in general only be obtained semiclassically when taking into account classical configurations not considered previously, for example those containing multiply traversed periodic orbits. Furthermore, semiclassics is capable of describing effects beyond RMT. In this context he studies the effect of a non-zero Ehrenfest time, which is the minimal time needed for an initially spatially localized wave packet to show interference. He derives its signature on several quantities characterizing mesoscopic systems, e. g. dc and ac conductance, dc conductance variance, n-pair correlation functions of scattering matrices and the gap in the density of states of Andreev billiards.
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spelling cern-14337632021-04-22T00:35:36Zdoi:10.1007/978-3-642-24528-2http://cds.cern.ch/record/1433763engWaltner, DanielSemiclassical approach to mesoscopic systems: classical trajectory correlations and wave interferenceGeneral Theoretical PhysicsThis volume describes mesoscopic systems with classically chaotic dynamics using semiclassical methods which combine elements of classical dynamics and quantum interference effects. Experiments and numerical studies show that Random Matrix Theory (RMT) explains physical properties of these systems well. This was conjectured more than 25 years ago by Bohigas, Giannoni and Schmit for the spectral properties. Since then, it has been a challenge to understand this connection analytically.  The author offers his readers a clearly-written and up-to-date treatment of the topics covered. He extends previous semiclassical approaches that treated spectral and conductance properties. He shows that RMT results can in general only be obtained semiclassically when taking into account classical configurations not considered previously, for example those containing multiply traversed periodic orbits. Furthermore, semiclassics is capable of describing effects beyond RMT. In this context he studies the effect of a non-zero Ehrenfest time, which is the minimal time needed for an initially spatially localized wave packet to show interference. He derives its signature on several quantities characterizing mesoscopic systems, e. g. dc and ac conductance, dc conductance variance, n-pair correlation functions of scattering matrices and the gap in the density of states of Andreev billiards.Springeroai:cds.cern.ch:14337632012
spellingShingle General Theoretical Physics
Waltner, Daniel
Semiclassical approach to mesoscopic systems: classical trajectory correlations and wave interference
title Semiclassical approach to mesoscopic systems: classical trajectory correlations and wave interference
title_full Semiclassical approach to mesoscopic systems: classical trajectory correlations and wave interference
title_fullStr Semiclassical approach to mesoscopic systems: classical trajectory correlations and wave interference
title_full_unstemmed Semiclassical approach to mesoscopic systems: classical trajectory correlations and wave interference
title_short Semiclassical approach to mesoscopic systems: classical trajectory correlations and wave interference
title_sort semiclassical approach to mesoscopic systems: classical trajectory correlations and wave interference
topic General Theoretical Physics
url https://dx.doi.org/10.1007/978-3-642-24528-2
http://cds.cern.ch/record/1433763
work_keys_str_mv AT waltnerdaniel semiclassicalapproachtomesoscopicsystemsclassicaltrajectorycorrelationsandwaveinterference