The mechanically induced structural disorder in barium hexaferrite, BaFe12O19, and its impact on magnetism

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Sepelak, V.; Myndyk, M.; Witte, R.; Roeder, J.; Menzel, D.; Schuster, R. H. et al.: The mechanically induced structural disorder in barium hexaferrite, BaFe12O19, and its impact on magnetism. In: Faraday Discussions 170 (2014), S. 121-135. DOI: http://dx.doi.org/10.1039/c3fd00137g

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Abstract: 
The response of the structure of the M-type barium hexaferrite (BaFe12O19) to mechanical action through high-energy milling and its impact on the magnetic behaviour of the ferrite are investigated. Due to the ability of the Fe-57 Mossbauer spectroscopic technique to probe the environment of the Fe nuclei, a valuable insight on a local atomic scale into the mechanically induced changes in the hexagonal structure of the material is obtained. It is revealed that the milling of BaFe12O19 results in the deformation of its constituent polyhedra (FeO6 octahedra, FeO4 tetrahedra and FeO5 triangular bi-pyramids) as well as in the mechanically triggered transition of the Fe3+ cations from the regular 12k octahedral sites into the interstitial positions provided by the magnetoplumbite structure. The response of the hexaferrite to the mechanical treatment is found to be accompanied by the formation of a non-uniform nanostructure consisting of an ordered crystallite surrounded/separated by a structurally disordered surface shell/interface region. The distorted polyhedra and the non-equilibrium cation distribution are found to be confined to the amorphous near-surface layers of the ferrite nanoparticles with the thickness extending up to about 2 nm. The information on the mechanically induced short-range structural disorder in BaFe12O19 is complemented by an investigation of its magnetic behaviour on a macroscopic scale. It is demonstrated that the milled ferrite nanoparticles exhibit a pure superparamagnetism at room temperature. As a consequence of the far-from-equilibrium structural disorder in the surface shell of the nanoparticles, the mechanically treated BaFe12O19 exhibits a reduced magnetization and an enhanced coercivity.
License of this version: CC BY-NC 3.0 Unported
Document Type: Article
Publishing status: publishedVersion
Issue Date: 2014
Appears in Collections:Naturwissenschaftliche Fakultät

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pos. country downloads
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1 image of flag of Germany Germany 320 82.05%
2 image of flag of United States United States 21 5.38%
3 image of flag of China China 17 4.36%
4 image of flag of United Kingdom United Kingdom 5 1.28%
5 image of flag of India India 4 1.03%
6 image of flag of No geo information available No geo information available 2 0.51%
7 image of flag of Lebanon Lebanon 2 0.51%
8 image of flag of Iceland Iceland 1 0.26%
9 image of flag of Indonesia Indonesia 1 0.26%
10 image of flag of Georgia Georgia 1 0.26%
    other countries 16 4.10%

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