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The impact of carbon coating on the synthesis and properties of alpha'-Fe16N2 powders

机译:碳涂层对α“ -Fe16N2粉末合成与性能的影响

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This paper presents the preparation of carbon composite Fe16N2 powders, and the influence of a protective carbon coating on the yield and magnetic properties of Fe16N2. Nanoparticle precursors with and without carbon were reacted under ammonia gas flow to produce Fe16N2. Neutron and X-ray powder diffraction indicate that the powders contain typically 40-60% Fe16N2, with the remaining phases being unreacted iron, Fe4N or Fe3N. Transmission electron microscopy demonstrates that the carbon coating is effective at reducing the level of sintering of Fe nanoparticles during the reduction stage prior to ammonolysis. XPS results support the retention of a carbon coating on the surface after ammonolysis, and that there is Fe-C bonding present at the particle surface. In situ TEM was used to observe loss of ordering in the nitrogen sublattice of carbon composite Fe16N2 powders in the range of 168 degrees C to 200 degrees C. Magnetic susceptibility measurements show maximum values for saturation magnetization in the range of 232 emu g(-1), and for coercivity near 930 Oe, for different samples measured up to 2 T applied field at 300 K.
机译:本文介绍了碳复合Fe16N2粉末的制备方法,以及保护性碳涂层对Fe16N2产率和磁性能的影响。具有和不具有碳的纳米颗粒前体在氨气流下反应以生成Fe16N2。中子和X射线粉末衍射表明,粉末通常含有40-60%的Fe16N2,其余相为未反应的铁,Fe4N或Fe3N。透射电子显微镜证明,在氨解之前的还原阶段,碳涂层可有效降低Fe纳米颗粒的烧结水平。 XPS结果支持在氨解后在表面保留碳涂层,并且在颗粒表面存在Fe-C键。使用原位TEM观察碳复合Fe16N2粉末在168°C至200°C范围内的氮亚晶格中的有序损耗。磁化率测量显示饱和磁化强度的最大值在232 emu g(-1)范围内),并且对于930 Oe附近的矫顽力,对于在300 K时高达2 T的外加磁场测量的不同样品。

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