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Sci Rep ; 10(1): 10807, 2020 Jul 02.
Artigo em Inglês | MEDLINE | ID: mdl-32616788

RESUMO

Here we first report results of the start of the solid-state reaction at the Rh/Fe(001) interface and the structural and magnetic phase transformations in 52Rh/48Fe(001), 45Rh/55Fe(001), 68Rh/32Fe(001) bilayers from room temperature to 800 °C. For all bilayers the non-magnetic nanocrystalline phase with a B2 structure (nfm-B2) is the first phase that is formed on the Rh/Fe(001) interface near 100 °C. Above 300 °C, without changing the nanocrystalline B2 structure, the phase grows into the low-magnetization modification αl' (MSl ~ 825 emu/cm3) of the ferromagnetic α' phase which has a reversible αl' ↔ α" transition. After annealing 52Rh/48Fe(001) bilayers above 600 °C the αl' phase increases in grain size and either develops into αh' with high magnetization (MSh ~ 1,220 emu/cm3) or remains in the αl' phase. In contrast to αl', the αh' ↔ α" transition in the αh' films is completely suppressed. When the annealing temperature of the 45Rh/55Fe(001) samples is increased from 450 to 800 °C the low-magnetization nanocrystalline αl' films develop into high crystalline perfection epitaxial αh'(001) layers, which have a high magnetization of ~ 1,275 emu/cm3. αh'(001) films do not undergo a transition to an antiferromagnetic α" phase. In 68Rh/32Fe(001) samples above 500 °C non-magnetic epitaxial γ(001) layers grow on the Fe(001) interface as a result of the solid-state reaction between the epitaxial αl'(001) and polycrystalline Rh films. Our results demonstrate not only the complex nature of chemical interactions at the low-temperature synthesis of the nfm-B2 and αl' phases in Rh/Fe(001) bilayers, but also establish their continuous link with chemical mechanisms underlying reversible αl' ↔ α" transitions.

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