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Electrochemical growth of CoPt nanowires of different aspect ratio and their magnetic properties

机译:不同长宽比的CoPt纳米线的电化学生长及其磁性

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The electrodeposition process of the CoPt system into two types of gold-coated polycarbonate and alumina membranes have been studied to test the possibility of electrochemical growth of CoPt nanowires with different length and aspect ratio but fixed composition showing hcp phase with maximum Pt incorporation. The evolution of the nanowires as a function of the deposition time was analysed; nanowires from 250 nm to 8 lm have been prepared. During the initial stages of the deposition, the formation of nanotubes in the membranes of higher porous diameter was observed, subsequently forming nanowires after continued deposition. With around 60 wt.% of Pt the CoPt nanowires show distorted hcp cobalt phase and preferred orientation conditioned by the pore’s diameter of the membrane. When using polycarbonate membranes, nanowires with an aspect ratio of 0.025 or lower showed clear magnetic anisotropy and the membrane magnetises easily by applying a parallel magnetic field (magnetic field perpendicular to the nanowires axis). When the length of the nanowires was reduced, magnetic anisotropy decreased. Coercivity remains in the range between 500 and 1000 Oe. When using an alumina template, the arrays showed similar coercivity, however, a higher magnetic anisotropy was observed with respect to those of similar length in a polycarbonate membrane, probably as a consequence of the elevated density of the arrays that permits higher interaction between the wires.
机译:研究了CoPt系统在两种类型的金膜聚碳酸酯和氧化铝膜中的电沉积过程,以测试不同长度和纵横比但组成固定的hcp相具有最大Pt掺入的CoPt纳米线电化学生长的可能性。分析了纳米线随沉积时间的变化。已经制备了从250 nm到8 lm的纳米线。在沉积的初始阶段,观察到在较高孔径的膜中形成纳米管,随后在连续沉积后形成纳米线。 CoPt纳米线含约60 wt。%的Pt时,显示出扭曲的hcp钴相,并且其优先取向取决于膜的孔径。当使用聚碳酸酯膜时,长宽比为0.025或更小的纳米线显示出​​清晰的磁各向异性,并且通过施加平行磁场(垂直于纳米线轴的磁场),膜容易磁化。当纳米线的长度减小时,磁各向异性减小。矫顽力保持在500至1000 Oe之间。当使用氧化铝模板时,阵列表现出相似的矫顽力,但是,相对于聚碳酸酯膜中相似长度的磁各向异性,观察到更高的磁各向异性,这可能是由于阵列密度提高导致导线之间具有更高的相互作用所致。 。

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