Physical Review Research (Aug 2020)

Electronic structure of pristine and Ni-substituted LaFeO_{3} from near edge x-ray absorption fine structure experiments and first-principles simulations

  • Iurii Timrov,
  • Piyush Agrawal,
  • Xinyu Zhang,
  • Selma Erat,
  • Riping Liu,
  • Artur Braun,
  • Matteo Cococcioni,
  • Matteo Calandra,
  • Nicola Marzari,
  • Daniele Passerone

DOI
https://doi.org/10.1103/PhysRevResearch.2.033265
Journal volume & issue
Vol. 2, no. 3
p. 033265

Abstract

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We present a joint theoretical and experimental study of the oxygen K-edge spectra for LaFeO_{3} and homovalent Ni-substituted LaFeO_{3} (LaFe_{0.75}Ni_{0.25}O_{3}), using first-principles simulations based on density-functional theory with extended Hubbard functionals and x-ray absorption near edge structure (XANES) measurements. Ground-state and excited-state XANES calculations employ Hubbard onsite U and intersite V parameters determined from first principles and the Lanczos recursive method to obtain absorption cross sections, which allows for a reliable description of XANES spectra in transition-metal compounds in a very broad energy range, with an accuracy comparable to that of hybrid functionals but at a substantially lower cost. We show that standard gradient-corrected exchange-correlation functionals fail in capturing accurately the electronic properties of both materials. In particular, for LaFe_{0.75}Ni_{0.25}O_{3} they do not reproduce its semiconducting behavior and provide a poor description of the pre-edge features at the O K edge. The inclusion of Hubbard interactions leads to a drastic improvement, accounting for the semiconducting ground state of LaFe_{0.75}Ni_{0.25}O_{3} and for good agreement between calculated and measured XANES spectra. We show that the partial substitution of Ni for Fe affects the conduction-band bottom by generating a strongly hybridized O(2p)-Ni(3d) minority-spin empty electronic state. The present work, based on a consistent correction of self-interaction errors, outlines the crucial role of extended Hubbard functionals to describe the electronic structure of complex transition-metal oxides such as LaFeO_{3} and LaFe_{0.75}Ni_{0.25}O_{3} and paves the way to future studies on similar systems.