English

Relation of Extended Van Hove Singularities to High-Temperature Superconductivity within Strong-Coupling Theory

Condensed Matter 2009-10-22 v1

Abstract

Recent angle-resolved photoemission (ARPES) experiments have indicated that the electronic dispersion in some of the cuprates possesses an extended saddle point near the Fermi level which gives rise to a density of states that diverges like a power law instead of the weaker logarithmic divergence usually considered. We investigate whether this strong singularity can give rise to high transition temperatures by computing the critical temperature TcT_c and isotope effect coefficient α\alpha within a strong- coupling Eliashberg theory which accounts for the full energy variation of the density of states. Using band structures extracted from ARPES measurements, we demonstrate that, while the weak-coupling solutions suggest a strong influence of the strength of the Van Hove singularity on TcT_c and α\alpha, strong-coupling solutions show less sensitivity to the singularity strength and do not support the hypothesis that band structure effects alone can account for either the large TcT_c's or the different TcT_c's within the copper oxide family. This conclusion is supported when our results are plotted as a function of the physically relevant self- consistent coupling constant, which show universal behavior at very strong coupling.

Keywords

Cite

@article{arxiv.cond-mat/9404081,
  title  = {Relation of Extended Van Hove Singularities to High-Temperature Superconductivity within Strong-Coupling Theory},
  author = {R. J. Radtke and M. R. Norman},
  journal= {arXiv preprint arXiv:cond-mat/9404081},
  year   = {2009}
}

Comments

11 pages + 4 figures available on request, Revtex 3.0, STCS preprint