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The microstructural evolution of chemical disorder and ferromagnetism in He~+ irradiated FePt_3 films

机译:He〜+辐照的FePt_3薄膜中化学无序和铁磁性的微观结构演变

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摘要

This paper investigates the role of ion-induced disorder on the morphology and magnetic properties of chemically ordered FePt3 films. The effects are studied for 15 keV He+ ions as a function of the ion fluence for 0, 2 x 10(16) and 2 x 10(17) ions cm(-2). Substitutional mixing of the L1(2)-type Fe-Pt sites takes place within the region of the chemically ordered FePt3 film affected by the irradiation. This accompanies a paramagnetic-to-ferromagnetic transition, as determined by room-temperature magnetometry. Dark-field transmission electron microscopy (TEM) measurements confirm that the 15 keV He+ ions induce a 120 nm-thick chemically disordered layer into the sub-surface region of the nominally 280 nm-thick ordered FePt3 film. The average domain size and the fractional density of the chemically ordered domains within the irradiated FePt3 microstructure are found to mutually decrease with increasing ion fluence. Selected-area electron diffraction results demonstrate that the film's single crystallinity is preserved after irradiation, irrespective of the ion fluence. High-resolution TEM elucidates the coexistence of ordered domains and precipitate disordered domains in the near-surface, low-ion impacted regions of the FePt3 film. Collectively, this work provides detailed insights into the material-science relationship between ion-induced disorder and ferromagnetism in FePt3, as a step towards creating fully customisable, ion-beam-synthesised magnetic nano-elements.
机译:本文研究了离子诱导的紊乱对化学有序FePt3膜的形貌和磁性的影响。针对0、2 x 10(16)和2 x 10(17)cm(-2)离子的能量密度研究了15 keV He +离子的影响。 L1(2)型Fe-Pt位点的替代混合发生在受辐射影响的化学有序FePt3膜区域内。这伴随着由室温磁力测定法确定的顺磁性到铁磁性的转变。暗场透射电子显微镜(TEM)测量证实,15 keV He +离子在标称280 nm厚的有序FePt3膜的亚表面区域中诱导了120 nm厚的化学无序层。已发现,受辐照的FePt3微观结构内的平均域大小和化学有序域的分数密度会随着离子通量的增加而相互减小。选定区域的电子衍射结果表明,辐照后该膜的单晶性得以保留,而与离子通量无关。高分辨率TEM阐明了FePt3膜的近表面,低离子影响区域中有序结构域和沉淀无序结构域的共存。总的来说,这项工作提供了对FePt3中离子引起的紊乱和铁磁性之间的材料科学关系的详细见解,这是朝着创建完全可定制的,离子束合成的磁性纳米元素迈出的一步。

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