Emergent Behavior in Strongly Correlated Electron Systems
arXiv:1601.05891 · doi:10.1088/0034-4885/79/9/092501
Abstract
I describe early work on strongly correlated electron systems [SCES] from the perspective of a theoretical physicist who, while a participant in their reductionist top- down beginnings, is now part of the paradigm change to a bottom-up "emergent" approach with its focus on using phenomenology to find the organizing principles responsible for their emergent behavior disclosed by experiment---and only then constructing microscopic models that incorporate these. After considering the organizing principles responsible for the emergence of plasmons, quasiparticles, and conventional superconductivity in SCES, I consider their application to three of SCES's sister systems, the helium liquids, nuclei, and the nuclear matter found in neutron stars. I note some recent applications of the random phase approximation and examine briefly the role that paradigm change is playing in two central problems in our field: understanding the emergence and subsequent behavior of heavy electrons in Kondo lattice materials; and finding the mechanism for the unconventional superconductivity found in heavy electron, organic, cuprate, and iron-based materials.
27 pages, to appear in Rep. Prog. Phys
References in corpus (4)
- The electronic properties of graphene
- Modelling the Localized to Itinerant Electronic Transition in the Heavy Fermion System CeIrIn5
- Electron Energy-Loss Spectroscopy: A versatile tool for the investigations of plasmonic excitations
- Hartree-Fock and Random Phase Approximation theories in a many-fermion solvable model
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- Study of crystal-field splitting in ultrathin CePt layers by Raman spectroscopy
- Reducing Self-Interaction Error in Transition-Metal Oxides with Different Exact-Exchange Fractions for Energy and Density
- Revisiting the Thomas-Fermi Potential for Three-Dimensional Condensed Matter Systems
- Phase-Space Approach to Wannier Pairing and Bogoliubov Orbitals in Square-Octagon Lattices