Published March 1, 1988 | Version v1
Journal article

Self-consistent full-potential linearized-augmented-plane-wave local-density electronic-structure studies of magnetism and superconductivity in C15 compounds: ZrZn2 and ZrV2

  • 1. Department of Physics and Astronomy, Northwestern University, Evanston, Illinois 60201

Description

The electronic structure and properties of the cubic Laves phase (C15) compounds ZrZn2 and ZrV2 have been determined using our all-electron full-potential linearized-augmented-plane-wave (FLAPW) method for bulk solids. The computations were performed in two stages: (i) self-consistent warped muffin tin and (ii) self-consistent full potential. Spin-orbit coupling was included after either stage. The effects of the inclusion of the nonspherical terms inside the muffin tins on the eigenvalues is found to be small (of order 1 mRy). However, due to the fact that some of the bands near the Fermi level are flat, this effect leads to a much higher value of the density of states at E/sub F/ in ZnZr2. The most important difference between the materials ZrZn2 and ZrV2 is the position of the d bands derived from the Zr and V atoms. Consequently, these materials have completely different Fermi surfaces. We have investigated the magnetic properties of these compounds by evaluating their generalized Stoner factors and found agreement with experiment. Our results for the superconducting transition temperature for these materials is found to be strongly dependent on the spin fluctuation parameter μ/sub sp/. Of course, because of the magnetic transition, superconductivity cannot be observed in ZnZr2

Additional details

Publishing Information

Journal Title
Phys. Rev., B: Condens. Matter
Journal Volume
37
Journal Issue
7
Series
Phys. Rev., B: Condens. Matter.
Journal Page Range
3489-3496
ISSN
0163-1829
CODEN
PRBMD