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Tailoring Magnetic Anisotropy in Ultrathin Cobalt by Surface Carbon Chemistry

机译:通过表面碳化学定制超薄钴中的磁各向异性

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The ability to manipulate magnetic anisotropy is essential for magnetic sensing and storage tools. Surface carbon species offer cost-effective alternatives to metal-oxide and noble metal capping layers, inducing perpendicular magnetic anisotropy in ultrathin ferromagnetic films. Here, the different mechanisms by which the magnetism in a few-layer-thick Co thin film is modified upon adsorption of carbon monoxide (CO), dispersed carbon, and graphene are elucidated. Using X-ray microscopy with chemical and magnetic sensitivity, the in-plane to out-of-plane spin reorientation transition in cobalt is monitored during the accumulation of surface carbon up to the formation of graphene. Complementary magneto-optical measurements show weak perpendicular magnetic anisotropy (PMA) at room temperature for dispersed carbon on Co, while graphene-covered cobalt exhibits a significant out-of-plane coercive field. Density-functional theory (DFT) calculations show that going from CO/Co to C/Co and to graphene/Co, the magnetocrystalline and magnetostatic anisotropies combined promote out-of-plane magnetization. Anisotropy energies weakly depend on carbidic species coverage. Instead, the evolution of the carbon chemical state from carbidic to graphitic is accompanied by an exponential increase in the characteristic domain size, controlled by the magnetic anisotropy energy. Beyond providing a basic understanding of the carbon-ferromagnet interfaces, this study presents a sustainable approach to tailor magnetic anisotropy in ultrathin ferromagnetic films.
机译:操纵磁各向异性的能力对于磁传感和存储工具至关重要。表面碳物质为金属氧化物和贵金属封层提供了具有成本效益的替代品,在超薄铁磁膜中诱导垂直磁各向异性。本文阐明了几层厚Co薄膜中的磁性在吸附一氧化碳(CO)、分散碳和石墨烯后被改变的不同机制。使用具有化学和磁敏感性的X射线显微镜,在表面碳积累直至石墨烯形成的过程中,监测钴中面内到面外的自旋重新取向转变。互补磁光测量结果显示,在室温下,Co上分散碳的垂直磁各向异性(PMA)较弱,而石墨烯覆盖的钴则表现出显著的面外矫顽力场。密度泛函理论(DFT)计算表明,从CO/Co到C/Co再到石墨烯/Co,磁晶和静磁各向异性的结合促进了面外磁化。各向异性能量弱依赖于碳化物物种的覆盖度。相反,碳化学态从碳化物到石墨的演变伴随着特征域大小的指数增长,由磁各向异性能量控制。除了提供对碳-铁磁体界面的基本了解外,本研究还提出了一种可持续的方法来定制超薄铁磁膜中的磁各向异性。

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