English

Spontaneous Fermi surface symmetry breaking in bilayered systems

Strongly Correlated Electrons 2015-05-13 v1

Abstract

We perform a comprehensive numerical study of d-wave Fermi surface deformations (dFSD) on a square lattice, the so-called d-wave Pomeranchuk instability, including bilayer coupling. Since the order parameter corresponding to the dFSD has Ising symmetry, there are two stacking patterns between the layeres, (+,+) and (+,-). This additional degree of freedom gives rise to a rich variety of phase diagrams. The phase diagrams are classified by means of the energy scale Lambda_{z}, which is defined as the bilayer splitting at the saddle points of the in-plane band dispersion. As long as Lambda_{z} ne 0, a major stacking pattern is usually (+,-), and (+,+) stacking is stabilized as a dominant pattern only when the temperature scale of the dFSD instability becomes much smaller than Lambda_z. For Lambda_{z}=0, the phase diagram depends on the precise form of the bilayer dispersion. We also analyze the effect of a magnetic field on the bilayer model in connection with a possible dFSD instability in the bilyared ruthenate Sr_3Ru_2O_7.

Keywords

Cite

@article{arxiv.0907.4253,
  title  = {Spontaneous Fermi surface symmetry breaking in bilayered systems},
  author = {Hiroyuki Yamase},
  journal= {arXiv preprint arXiv:0907.4253},
  year   = {2015}
}

Comments

18 pages, 7 figures

R2 v1 2026-06-21T13:28:36.356Z