Literature DB >> 27411298

Quantum-critical fluctuations in 2D metals: strange metals and superconductivity in antiferromagnets and in cuprates.

Chandra M Varma1.   

Abstract

The anomalous transport and thermodynamic properties in the quantum-critical region, in the cuprates, and in the quasi-two dimensional Fe-based superconductors and heavy-fermion compounds, have the same temperature dependences. This can occur only if, despite their vast microscopic differences, a common statistical mechanical model describes their phase transitions. The antiferromagnetic (AFM)-ic models for the latter two, just as the loop-current model for the cuprates, map to the dissipative XY model. The solution of this model in (2+1)D reveals that the critical fluctuations are determined by topological excitations, vortices and a variety of instantons, and not by renormalized spin-wave theories of the Landau-Ginzburg-Wilson type, adapted by Moriya, Hertz and others for quantum-criticality. The absorptive part of the fluctuations is a separable function of momentum [Formula: see text], measured from the ordering vector, and of the frequency ω and the temperature T which scale as [Formula: see text] at criticality. Direct measurements of the fluctuations by neutron scattering in the quasi-two-dimensional heavy fermion and Fe-based compounds, near their antiferromagnetic quantum critical point, are consistent with this form. Such fluctuations, together with the vertex coupling them to fermions, lead to a marginal fermi-liquid, with the imaginary part of the self-energy [Formula: see text] for all momenta, a resistivity [Formula: see text], a [Formula: see text] contribution to the specific heat, and other singular fermi-liquid properties common to these diverse compounds, as well as to d-wave superconductivity. This is explicitly verified, in the cuprates, by analysis of the pairing and the normal self-energy directly extracted from the recent high resolution angle resolved photoemission measurements. This reveals, in agreement with the theory, that the frequency dependence of the attractive irreducible particle-particle vertex in the d-wave channel is the same as the irreducible particle-hole vertex in the full symmetry of the lattice.

Entities:  

Year:  2016        PMID: 27411298     DOI: 10.1088/0034-4885/79/8/082501

Source DB:  PubMed          Journal:  Rep Prog Phys        ISSN: 0034-4885


  2 in total

1.  Nematic fluctuations in the cuprate superconductor Bi2Sr2CaCu2O8+δ.

Authors:  N Auvray; B Loret; S Benhabib; M Cazayous; R D Zhong; J Schneeloch; G D Gu; A Forget; D Colson; I Paul; A Sacuto; Y Gallais
Journal:  Nat Commun       Date:  2019-11-15       Impact factor: 14.919

2.  Quantum Spin-1/2 Dimers in a Low-Dimensional Tetrabromocuprate Magnet.

Authors:  Gavin Sampson; Nicholas C Bristowe; Sam T Carr; Asad Saib; Gavin B G Stenning; Ewan R Clark; Paul J Saines
Journal:  Chemistry       Date:  2022-04-27       Impact factor: 5.020

  2 in total

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