Exceptionally high saturation magnetisation in Eu-doped magnetite stabilised by spin-orbit interaction.

Phys Chem Chem Phys

Center for Spintronics Research Network, Graduate School of Engineering, The University of Tokyo, 7-3-1 Hongo, Bunkyo-ku, Tokyo 113-8656, Japan.

Published: September 2021

AI Article Synopsis

  • The spin-orbit interaction is crucial in rare-earth compounds like Eu-doped magnetite, influencing its magnetic properties.
  • Density functional calculations reveal that when Eu is doped at the tetrahedral site, its spin orientation opposes that of the nearby Fe, leading to enhanced magnetic properties.
  • The study shows that while electron doping maintains high magnetisation levels in FeO:Eu, unintended hole doping can reduce magnetisation below that of undoped magnetite, highlighting implications for catalyst design.

Article Abstract

The significance of the spin-orbit interaction is very well known in compounds containing heavier elements such as the rare-earth Eu ion. Here, through density functional calculations, we investigated the effect of the spin-orbit interaction on the magnetic ground state of Eu doped magnetite (FeO:Eu). By examining all possible spin alignments between Eu and magnetite's Fe, we demonstrate that Eu, which is most stable when doped at the tetrahedral site, adapts a spin almost opposite the substituted Fe. Consequently, because of smaller spin cancellation between the cations on the tetrahedral site (Fe and Eu) and the cations on the octahedral sites (Fe), FeO:Eu exhibits a maximum saturation magnetisation of 9.451 per f.u. which is significantly larger than that of undoped magnetite (calculated to be 3.929 per f.u.). We further show that this large magnetisation persists through additional electron doping. However, additional hole doping, which may unintentionally occur in Fe deficient magnetite, can reduce the magnetisation to values smaller than that of the undoped magnetite. The results presented here can aid in designing highly efficient magnetically recoverable catalysts for which both magnetite and rare earth dopants are common materials.

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Source
http://dx.doi.org/10.1039/d1cp02164hDOI Listing

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