000 03959nam a22005295i 4500
001 978-3-642-10449-7
003 DE-He213
005 20140220083255.0
007 cr nn 008mamaa
008 120103s2012 gw | s |||| 0|eng d
020 _a9783642104497
_9978-3-642-10449-7
024 7 _a10.1007/978-3-642-10449-7
_2doi
050 4 _aQC611.9-611.98
072 7 _aTJFD5
_2bicssc
072 7 _aTEC039000
_2bisacsh
072 7 _aSCI021000
_2bisacsh
082 0 4 _a530.41
_223
100 1 _aCabra, Daniel C.
_eeditor.
245 1 0 _aModern Theories of Many-Particle Systems in Condensed Matter Physics
_h[electronic resource] /
_cedited by Daniel C. Cabra, Andreas Honecker, Pierre Pujol.
264 1 _aBerlin, Heidelberg :
_bSpringer Berlin Heidelberg,
_c2012.
300 _aXIII, 368p. 130 illus.
_bonline resource.
336 _atext
_btxt
_2rdacontent
337 _acomputer
_bc
_2rdamedia
338 _aonline resource
_bcr
_2rdacarrier
347 _atext file
_bPDF
_2rda
490 1 _aLecture Notes in Physics,
_x0075-8450 ;
_v843
505 0 _aQuantum Phase Transitions of Antiferromagnets and the Cuprate Superconductors -- Electronic Liquid Crystal Phases in Strongly Correlated Systems -- Selected Topics in Graphene Physics -- Strong Electronic Correlations: Dynamical Mean-Field Theory and Beyond -- Nonequilibrium Transport and Dephasing in Coulomb-blockaded Quantum Dots -- Many-body Physics From a Quantum Information Perspective -- Statistical Mechanics of Classical and Quantum Computational Complexity -- Non-perturbative Methods in (1+1) Dimensional Quantum Field Theory.
520 _aCondensed matter systems where interactions are strong are inherently difficult to analyze theoretically. The situation is particularly interesting in low-dimensional systems, where quantum fluctuations play a crucial role. Here, the development of non-perturbative methods and the study of integrable field theory have facilitated the understanding of the behavior of many quasi one- and two-dimensional strongly correlated systems. In view of the same rapid development that has taken place for both experimental and numerical techniques, as well as the emergence of novel testing-grounds such as cold atoms or graphene, the current understanding of strongly correlated condensed matter systems differs quite considerably from standard textbook presentations.   The present volume of lecture notes aims to fill this gap in the literature by providing a collection of authoritative tutorial reviews, covering such topics as quantum phase transitions of antiferromagnets and cuprate-based high-temperature superconductors, electronic liquid crystal phases, graphene physics, dynamical mean field theory applied to strongly correlated systems, transport through quantum dots, quantum information perspectives on many-body physics, frustrated magnetism, statistical mechanics of classical and quantum computational complexity, and integrable methods in statistical field theory.   As both graduate-level text and authoritative reference on this topic, this book will benefit newcomers and more experienced researchers in this field alike.
650 0 _aPhysics.
650 0 _aMagnetism.
650 1 4 _aPhysics.
650 2 4 _aStrongly Correlated Systems, Superconductivity.
650 2 4 _aStatistical Physics, Dynamical Systems and Complexity.
650 2 4 _aMagnetism, Magnetic Materials.
650 2 4 _aQuantum Information Technology, Spintronics.
650 2 4 _aPhase Transitions and Multiphase Systems.
700 1 _aHonecker, Andreas.
_eeditor.
700 1 _aPujol, Pierre.
_eeditor.
710 2 _aSpringerLink (Online service)
773 0 _tSpringer eBooks
776 0 8 _iPrinted edition:
_z9783642104480
830 0 _aLecture Notes in Physics,
_x0075-8450 ;
_v843
856 4 0 _uhttp://dx.doi.org/10.1007/978-3-642-10449-7
912 _aZDB-2-PHA
912 _aZDB-2-LNP
999 _c101827
_d101827