Institute of Nanostructure and Solid-State Physics, Universität Hamburg, D-20355 Hamburg, Germany.
Nanotechnology. 2017 Feb 10;28(6):065709. doi: 10.1088/1361-6528/aa5118. Epub 2017 Jan 9.
Segmented magnetic nanowires are a promising route for the development of three dimensional data storage techniques. Such devices require a control of the coercive field and the coupling mechanisms between individual magnetic elements. In our study, we investigate electrodeposited nanomagnets within host templates using vibrating sample magnetometry and observe a strong dependence between nanowire length and coercive field (25 nm-5 μm) and diameter (25-45 nm). A transition from a magnetization reversal through coherent rotation to domain wall propagation is observed at an aspect ratio of approximately 2. Our results are further reinforced via micromagnetic simulations and angle dependent hysteresis loops. The found behavior is exploited to create nanowires consisting of a fixed and a free segment in a spin-valve like structure. The wires are released from the membrane and electrically contacted, displaying a giant magnetoresistance effect that is attributed to individual switching of the coupled nanomagnets. We develop a simple analytical model to describe the observed switching phenomena and to predict stable and unstable regimes in coupled nanomagnets of certain geometries.
分段磁性纳米线是开发三维数据存储技术的一种很有前途的途径。这种设备需要控制矫顽力和各个磁性元件之间的耦合机制。在我们的研究中,我们使用振动样品磁强计研究了在主体模板内电沉积的纳米磁体,并观察到纳米线长度和矫顽力(25nm-5μm)和直径(25-45nm)之间的强烈依赖性。在纵横比约为 2 时,观察到从通过相干旋转的磁化反转到畴壁传播的转变。通过微磁模拟和角度相关的滞后回线进一步加强了我们的结果。所发现的行为被用来在类似于自旋阀的结构中创建由固定和自由段组成的纳米线。这些线从膜上释放出来并进行电接触,显示出巨大的磁电阻效应,这归因于耦合纳米磁体的单独切换。我们开发了一个简单的分析模型来描述观察到的切换现象,并预测某些几何形状的耦合纳米磁体的稳定和不稳定区域。