Skip to main content
U.S. Department of Energy
Office of Scientific and Technical Information

Vertex corrections and two-loop pairing potential in nearly antiferromagnetic Fermi liquids

Journal Article · · Physical Review, B: Condensed Matter
 [1]
  1. Department of Physics and National High Magnetic Field Laboratory, Florida State University, Tallahassee, Florida 32306 (United States)

We have calculated, within perturbation theory, the correction to the Eliashberg approximation for nearly antiferromagnetic Fermi liquids. The vertex corrections to the effective interaction that determines the normal-state properties of the model result in a increase of the quasiparticle spin-fluctuation coupling for spin-fluctuation momenta near the antiferromagnetic wave vector {bold Q}=({pi},{pi}) for a large Fermi surface. This increase gets larger as the antiferromagnetic correlation length increases and is very anisotropic. It is most important for points on the Fermi surface where the d{sub x{sup 2}{minus}y{sup 2}} gap is large. These higher-order corrections also result in a stronger pairing potential in the d{sub x{sup 2}{minus}y{sup 2}} channel relative to the one-loop Eliashberg contribution. {copyright} {ital 1997} {ital The American Physical Society}

OSTI ID:
530177
Journal Information:
Physical Review, B: Condensed Matter, Journal Name: Physical Review, B: Condensed Matter Journal Issue: 22 Vol. 55; ISSN PRBMDO; ISSN 0163-1829
Country of Publication:
United States
Language:
English

Similar Records

Nearly antiferromagnetic Fermi-liquid description of magnetic scaling and spin-gap behavior
Journal Article · Wed Nov 30 23:00:00 EST 1994 · Physical Review, B: Condensed Matter; (United States) · OSTI ID:7093881

Nearly antiferromagnetic Fermi liquids: An analytic Eliashberg approach
Journal Article · Mon Jun 01 00:00:00 EDT 1992 · Physical Review, B: Condensed Matter; (United States) · OSTI ID:7034441

Vertex Corrections in Antiferromagnetic Spin Fluctuation Theories
Journal Article · Sun Sep 01 00:00:00 EDT 1996 · Physical Review Letters · OSTI ID:385789