English

Role of spin-orbit coupling effects in rare-earth metallic tetra-borides : a first principle study

Strongly Correlated Electrons 2023-03-22 v1 Materials Science

Abstract

We have investigated the electronic structure of rare-earth tetraborides, RB4\textrm{RB}_{4}, using first-principle electronic structure methods (DFT) implemented in Quantum Espresso (QE). In this article we have studied heather-to neglected strong spin-orbit coupling (SOC) effects present in these systems on the electronic structure of these system in the non-magnetic ground state. The calculations were done under GGA and GGA+SO approximations using ultrasoft pseudopotentials and fully relativistic ultrasoft pseudopotentials (for SOC case). Perdew-Burke-Ernzerhof generalized gradient approximation (PBE-GGA) exchange-correlation functionals within the linearized plane-wave (LAPW) method as implemented in QE were used. The projected density of states consists of 3 distinct spectral peaks well below the Fermi energy and separated from the continuum density of states around the Fermi energy. The discrete peaks arises due to rare-earth ss-orbital, rare-earth pp + B pp and B pp-orbitals while the continuum arises due to hybridized B pp, rare-earth dd orbitals. Upon inclusion of SOC the peak arising due to rare-earth pp-orbitals gets split into two peaks corresponding to j=0.5j=0.5 and j=1.5j=1.5 configurations. In case of LaB4\textrm{LaB}_{4}, in the presence of SOC, spin-split 4f4f orbitals contributes to density of states at the Fermi level while the density of states at the Fermi level largely remains unaffected for all other materials under consideration.

Keywords

Cite

@article{arxiv.2208.08381,
  title  = {Role of spin-orbit coupling effects in rare-earth metallic tetra-borides : a first principle study},
  author = {Ismail Sk and Nandan Pakhira},
  journal= {arXiv preprint arXiv:2208.08381},
  year   = {2023}
}

Comments

9 pages, 11 figures