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镍铁纳米孔阵列的磁、电和磁输运性能之间的相关性。

Correlations among magnetic, electrical and magneto-transport properties of NiFe nanohole arrays.

机构信息

INESC-MN and IN, Rua Alves Redol 9, 1000-029 Lisboa, Portugal.

出版信息

J Phys Condens Matter. 2013 Feb 13;25(6):066007. doi: 10.1088/0953-8984/25/6/066007. Epub 2013 Jan 11.

Abstract

In this work, we use anodic aluminum oxide (AAO) templates to build NiFe magnetic nanohole arrays. We perform a thorough study of their magnetic, electrical and magneto-transport properties (including the resistance R(T), and magnetoresistance MR(T)), enabling us to infer the nanohole film morphology, and the evolution from granular to continuous film with increasing thickness. In fact, different physical behaviors were observed to occur in the thickness range of the study (2 nm < t < 100 nm). For t < 10 nm, an insulator-to-metallic crossover was visible in R(T), pointing to a granular film morphology, and thus being consistent with the presence of electron tunneling mechanisms in the magnetoresistance. Then, for 10 nm < t < 50 nm a metallic R(T) allied with a larger anisotropic magnetoresistance suggests the onset of morphological percolation of the granular film. Finally, for t > 50 nm, a metallic R(T) and only anisotropic magnetoresistance behavior were obtained, characteristic of a continuous thin film. Therefore, by combining simple low-cost bottom-up (templates) and top-down (sputtering deposition) techniques, we are able to obtain customized magnetic nanostructures with well-controlled physical properties, showing nanohole diameters smaller than 35 nm.

摘要

在这项工作中,我们使用阳极氧化铝(AAO)模板来构建 NiFe 磁性纳米孔阵列。我们对它们的磁性、电学和磁输运性质(包括电阻 R(T)和磁电阻 MR(T))进行了深入研究,从而可以推断出纳米孔薄膜的形态,以及随着厚度的增加从颗粒状到连续膜的演变。事实上,在研究的厚度范围内(2nm<t<100nm)观察到了不同的物理行为。对于 t<10nm,R(T)中出现了从绝缘体到金属的转变,表明存在颗粒状薄膜的形态,因此与磁电阻中的电子隧道机制的存在一致。然后,对于 10nm<t<50nm,金属 R(T)伴随着较大的各向异性磁电阻表明颗粒状薄膜的形态开始出现渗流。最后,对于 t>50nm,得到了金属 R(T)和仅各向异性磁电阻行为,这是连续薄膜的特征。因此,通过结合简单的低成本自下而上(模板)和自上而下(溅射沉积)技术,我们能够获得具有良好控制物理性质的定制磁性纳米结构,显示出小于 35nm 的纳米孔直径。

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