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首页> 外文期刊>Scientific reports. >Synthesis of Fe16N2 compound Free-Standing Foils with 20 MGOe Magnetic Energy Product by Nitrogen Ion-Implantation
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Synthesis of Fe16N2 compound Free-Standing Foils with 20 MGOe Magnetic Energy Product by Nitrogen Ion-Implantation

机译:氮离子注入法合成具有20 MGOe磁能产物的Fe16N2复合无固定箔

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摘要

Rare-earth-free magnets are highly demanded by clean and renewable energy industries because of the supply constraints and environmental issues. A promising permanent magnet should possess high remanent magnetic flux density (Br), large coercivity (Hc) and hence large maximum magnetic energy product ((BH)max). Fe16N2 has been emerging as one of promising candidates because of the redundancy of Fe and N on the earth, its large magnetocrystalline anisotropy (Ku??1.0?×?10(7)?erg/cc), and large saturation magnetization (4πMs??2.4?T). However, there is no report on the formation of Fe16N2 magnet with high Br and large Hc in bulk format before. In this paper, we successfully synthesize free-standing Fe16N2 foils with a coercivity of up to 1910?Oe and a magnetic energy product of up to 20 MGOe at room temperature. Nitrogen ion implantation is used as an alternative nitriding approach with the benefit of tunable implantation energy and fluence. An integrated synthesis technique is developed, including a direct foil-substrate bonding step, an ion implantation step and a two-step post-annealing process. With the tunable capability of the ion implantation fluence and energy, a microstructure with grain size 25-30?nm is constructed on the FeN foil sample with the implantation fluence of 5?×?10(17)/cm(2).
机译:由于供应限制和环境问题,清洁和可再生能源行业对无稀土磁铁的需求很高。有前途的永磁体应具有较高的剩余磁通密度(Br),较大的矫顽力(Hc)和最大的最大磁能积((BH)max)。 Fe16N2由于地球上Fe和N的冗余,其大的磁晶各向异性(Ku?>?1.0?×?10(7)?erg / cc)和大的饱和磁化强度(4πMs)而成为有希望的候选物之一。 ?>?2.4?T)。但是,以前没有大量形成高Br,Hc大的Fe16N2磁铁的报道。在本文中,我们成功地在室温下合成了矫顽力高达1910?Oe和磁能积高达20 MGOe的自立式Fe16N2箔。氮离子注入被用作可替代的氮化方法,其优点是可调节的注入能量和注量。开发了一种综合的合成技术,包括直接的箔-基底键合步骤,离子注入步骤和两步后退火工艺。利用离子注入通量和能量的可调节能力,在FeN箔样品上构建了晶粒尺寸为25-30?nm的微结构,其注入通量为5?×?10(17)/ cm(2)。

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