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Transport Phenomena in Strongly Correlated Fermi Liquids

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In conventional metals, various transport coefficients are scaled according to the quasiparticle relaxation time, \tau, which implies that the relaxation time approximation (RTA) holds well. However, such a simple scaling does not hold in many strongly correlated electron systems, reflecting their unique electronic states. The most famous example would be cuprate high-Tc superconductors (HTSCs), where almost all the transport coefficients exhibit a significant deviation from the RTA results. To better understand the origin of this discrepancy, we develop a method for calculating various transport coefficients beyond the RTA by employing field theoretical techniques. Near the magnetic quantum critical point, the current vertex correction (CVC), which describes the electron-electron scattering beyond the relaxation time approximation, gives rise to various anomalous transport phenomena. We explain anomalous transport phenomena in cuprate HTSCs and other metals near their magnetic or orbital quantum critical point using a uniform approach. We also discuss spin related transport phenomena in strongly correlated systems. In many d- and f-electron systems, the spin current induced by the spin Hall effect is considerably greater because of the orbital degrees of freedom. This fact attracts much attention due to its potential application in spintronics. We discuss various novel charge, spin and heat transport phenomena in strongly correlated metals.

Summary


In conventional metals, various transport coefficients are scaled according to the quasiparticle relaxation time, \tau, which implies that the relaxation time approximation (RTA) holds well. However, such a simple scaling does not hold in many strongly correlated electron systems, reflecting their unique electronic states. The most famous example would be cuprate high-Tc superconductors (HTSCs), where almost all the transport coefficients exhibit a significant deviation from the RTA results. To better understand the origin of this discrepancy, we develop a method for calculating various transport coefficients beyond the RTA by employing field theoretical techniques. Near the magnetic quantum critical point, the current vertex correction (CVC), which describes the electron-electron scattering beyond the relaxation time approximation, gives rise to various anomalous transport phenomena. We explain anomalous transport phenomena in cuprate HTSCs and other metals near their magnetic or orbital quantum critical point using a uniform approach. We also discuss spin related transport phenomena in strongly correlated systems. In many d- and f-electron systems, the spin current induced by the spin Hall effect is considerably greater because of the orbital degrees of freedom. This fact attracts much attention due to its potential application in spintronics. We discuss various novel charge, spin and heat transport phenomena in strongly correlated metals.


Product details

Authors Hiroshi Kontani
Publisher Springer, Berlin
 
Content Book
Product form Paperback / Softback
Publication date 01.01.2015
Subject Natural sciences, medicine, IT, technology > Physics, astronomy > Atomic physics, nuclear physics
 
EAN 9783642437632
ISBN 978-3-642-43763-2
Pages 173
Illustrations XI, 173 p. 64 illus.
Dimensions (packing) 15.5 x 1 x 23.5 cm
Weight (packing) 297 g
 
Series Springer Tracts in Modern Physics > 251
Springer Tracts in Modern Physics
Springer Tracts in Modern Physics. Ergebnisse der exakten Naturwissenschaften > 251
Subjects B, Condensed Matter Physics, Condensed matter, Physics and Astronomy, Electronic devices & materials, Strongly Correlated Systems, Superconductivity, Superconductivity, Superconductors
 

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