Many-Body Physics and Quantum Chaos
arXiv:0712.1154 · doi:10.1088/0034-4885/71/2/026001
Abstract
Experimental progresses in the miniaturisation of electronic devices have made routinely available in the laboratory small electronic systems, on the micron or sub-micron scale, which at low temperature are sufficiently well isolated from their environment to be considered as fully coherent. Some of their most important properties are dominated by the interaction between electrons. Understanding their behaviour therefore requires a description of the interplay between interference effects and interactions. The goal of this review is to address this relatively broad issue, and more specifically to address it from the perspective of the quantum chaos community. I will therefore present some of the concepts developed in the field of quantum chaos which have some application to study many-body effects in mesoscopic and nanoscopic systems. Their implementation is illustrated on a few examples of experimental relevance such as persistent currents, mesoscopic fluctuations of Kondo properties or Coulomb blockade. I will furthermore try to bring out, from the various physical illustrations, some of the specific advantages on more general grounds of the quantum chaos based approach.
To appear in Rep. Prog. Phys
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Cited by in corpus (7)
- Distribution of the Ratio of Consecutive Level Spacings for Different Symmetries and Degrees of Chaos
- The semiclassical propagator in fermionic Fock space
- Particle Diagrams and Statistics of Many-Body Random Potentials
- Ground State and Excitations of Quantum Dots with "Magnetic Impurities"
- Orbital Magnetism of Graphene Nanostructures: Bulk and Confinement Effects
- One plus two-body random matrix ensembles with parity: Density of states and parity ratios
- Classical route to quantum chaotic motions