Published July 25, 2018 | Version v1
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Translationally Invariant Non-Fermi-Liquid Metals with Critical Fermi Surfaces: Solvable Models

  • 1. Massachusetts Institute of Technology
  • 2. Weizmann Institute of Science
  • 3. University of Chicago

Description

We construct examples of translationally invariant solvable models of strongly correlated metals, composed of lattices of Sachdev-Ye-Kitaev dots with identical local interactions. These models display crossovers as a function of temperature into regimes with local quantum criticality and marginal-Fermi-liquid behavior. In the marginal-Fermi-liquid regime, the dc resistivity increases linearly with temperature over a broad range of temperatures. By generalizing the form of interactions, we also construct examples of non-Fermi liquids with critical Fermi surfaces. The self-energy has a singular frequency dependence but lacks momentum dependence, reminiscent of a dynamical mean-field-theory-like behavior but in dimensions d < ∞. In the low-temperature and strong-coupling limit, a heavy Fermi liquid is formed. The critical Fermi surface in the non-Fermi-liquid regime gives rise to quantum oscillations in the magnetization as a function of an external magnetic field in the absence of quasiparticle excitations. We discuss the implications of these results for local quantum criticality and for fundamental bounds on relaxation rates. Drawing on the lessons from these models, we formulate conjectures on coarse-grained descriptions of a class of intermediate-scale non-Fermi-liquid behavior in generic correlated metals.

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PhysRevX.8.031024.pdf

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Additional details

Identifiers

DOI
10.1103/PhysRevX.8.031024
Other
oai:uchicago.tind.io:11411

Funding

National Science Foundation
PHY-1125915
U.S. Department of Energy
DE-SC0008739
Simons Foundation
Gordon and Betty Moore Foundation
GBMF-4303
Norsk Sykepleierforbund
National Science Foundation
PHY-1607611

UChicago Information

Division(s)
Physical Sciences Division
Department(s)
Physics