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Magnetization reversal dependence on effective magnetic anisotropy in electroplated Co-Cu nanowire arrays

机译:电镀Co-Cu纳米线阵列中磁化反转对有效磁各向异性的依赖性

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摘要

Arrays of Co(100-x)Cu(x) (0 <= x <= 27) nanowires with 45 nm of diameter and 18 mu m in length have been potentiostatically electrodeposited into the hexagonally self-assembled nanopores of anodic alumina membranes. The structural characterization of Co-Cu nanowires confirms the coexistence of both hcp and fcc crystalline phases, with textures that are strongly affected by the fractional content of Cu. Parallel magnetic studies of the room temperature magnetization process by First Order Reversal Curve (FORC) analysis and the angular dependence of coercivity confirm the presence of two coexisting ferromagnetic phases on intermediate Cu content nanowires, ascribed to a softer magnetic phase for pure Co and a harder magnetic one for the Co-Cu composition alloy, respectively. The temperature dependence of coercivity and remanence reveal a reorientation of the effective magnetic anisotropy with the addition of Cu to the Co-Cu alloy nanowires, being enhanced by the coexistence of the two ferromagnetic phases.
机译:直径为45 nm,长度为18μm的Co(100-x)Cu(x)(0 <= x <= 27)纳米线阵列已被恒电位电沉积到阳极氧化铝膜的六角形自组装纳米孔中。 Co-Cu纳米线的结构特征证实了hcp和fcc晶相的共存,且其质地受到Cu的分数含量的强烈影响。通过一阶逆向曲线(FORC)分析和矫顽力的角度依赖性对室温磁化过程进行平行磁研究,证实了在中等含量的Cu纳米线上存在两个共存的铁磁相,这归因于纯Co的软磁相和较硬的磁性合金分别用于Co-Cu成分合金。矫顽力和剩磁的温度相关性表明,在两个铁磁相的共存下,向Co-Cu合金纳米线中添加了Cu后,有效磁各向异性重新定向。

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