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Issue 6, 2015
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Composite nanoplatelets combining soft-magnetic iron oxide with hard-magnetic barium hexaferrite

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Abstract

By coupling two different magnetic materials inside a single composite nanoparticle, the shape of the magnetic hysteresis can be engineered to meet the requirements of specific applications. Sandwich-like composite nanoparticles composed of a hard-magnetic Ba-hexaferrite (BaFe12O19) platelet core in between two soft-magnetic spinel iron oxide maghemite (γ-Fe2O3) layers were synthesized using a new, simple and inexpensive method based on the co-precipitation of Fe3+/Fe2+ ions in an aqueous suspension of hexaferrite core nanoparticles. The required close control of the supersaturation of the precipitating species was enabled by the controlled release of the Fe3+ ions from the nitrate complex with urea ([Fe((H2N)2C[double bond, length as m-dash]O)6](NO3)3) and by using Mg(OH)2 as a solid precipitating agent. The platelet Ba-hexaferrite nanoparticles of different sizes were used as the cores. The controlled coating resulted in an exclusively heterogeneous nucleation and the topotactic growth of the spinel layers on both basal surfaces of the larger hexaferrite nanoplatelets. The direct magnetic coupling between the core and the shell resulted in a strong increase of the energy product |BH|max. Ultrafine core nanoparticles reacted with the precipitating species and homogeneous product nanoparticles were formed, which differ in terms of the structure and composition compared to any other compound in the BaO–Fe2O3 system.

Graphical abstract: Composite nanoplatelets combining soft-magnetic iron oxide with hard-magnetic barium hexaferrite

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Publication details

The article was received on 06 Oct 2014, accepted on 29 Dec 2014 and first published on 30 Dec 2014


Article type: Paper
DOI: 10.1039/C4NR05854B
Author version available: Download Author version (PDF)
Citation: Nanoscale, 2015,7, 2688-2697
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    Composite nanoplatelets combining soft-magnetic iron oxide with hard-magnetic barium hexaferrite

    D. Primc and D. Makovec, Nanoscale, 2015, 7, 2688
    DOI: 10.1039/C4NR05854B

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