Cationic Ordering and Its Influence on the Magnetic Properties of Co-Rich Cobalt Ferrite Thin Films Prepared by Reactive Solid Phase Epitaxy on Nb-Doped SrTiO 3 (001).
Jannis ThienJascha BahlmannAndreas AlexanderKevin RuwischJari RodewaldTobias PohlmannMartin HoppeFatih AlarslanMartin SteinhartBaki AltuncevahirPadraic ShaferCarola MeyerFlorian BertramJoachim WollschlägerKarsten KüpperPublished in: Materials (Basel, Switzerland) (2021)
Here, we present the (element-specific) magnetic properties and cation ordering for ultrathin Co-rich cobalt ferrite films. Two Co-rich CoxFe3-xO4 films with different stoichiometry (x=1.1 and x=1.4) have been formed by reactive solid phase epitaxy due to post-deposition annealing from epitaxial CoO/Fe3O4 bilayers deposited before on Nb-doped SrTiO3(001). The electronic structure, stoichiometry and homogeneity of the cation distribution of the resulting cobalt ferrite films were verified by angle-resolved hard X-ray photoelectron spectroscopy. From X-ray magnetic circular dichroism measurements, the occupancies of the different sublattices were determined using charge-transfer multiplet calculations. For both ferrite films, a partially inverse spinel structure is found with increased amount of Co3+ cations in the low-spin state on octahedral sites for the Co1.4Fe1.6O4 film. These findings concur with the results obtained by superconducting quantum interference device measurements. Further, the latter measurements revealed the presence of an additional soft magnetic phase probably due to cobalt ferrite islands emerging from the surface, as suggested by atomic force microscope measurements.
Keyphrases
- room temperature
- metal organic framework
- carbon nanotubes
- ionic liquid
- high resolution
- molecularly imprinted
- reduced graphene oxide
- quantum dots
- single molecule
- molecular dynamics
- molecular dynamics simulations
- density functional theory
- gold nanoparticles
- electron microscopy
- dual energy
- mass spectrometry
- visible light
- monte carlo