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Structure and magnetic properties of ferromagnetic nanowires in self-assembled arrays - art. no. 134426

机译:自组装阵列中铁磁纳米线的结构和磁性-Art。没有。 134426

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摘要

Static and dynamic aspects of the magnetization reversal in nanowire arrays are investigated. The arrays have been produced by electrodeposition of ferromagnetic metals (Fe, Co, and Ni) into porous anodic alumina templates, with diameters as small as 5 nm. The crystal structures of the nanowires are bcc (Fe) and fcc (Ni) and a mixture of fcc and hcp (Co), with grain sizes of a few nanometers. Magnetic properties as a function of temperature are investigated. The temperature dependence of coercivity can be understood in terms of thermal activation over an energy barrier with a 3/2-power dependence on the field. Coercivity as a function of diameter reveals a change of the magnetization reversal mechanism from localized quasicoherent nucleation for small diameters to a localized curlinglike nucleation as the diameter exceeds a critical value determined by the exchange length. The quasicoherent limit is described by a model that yields explicitly real-structure-dependent expressions for coercivity, localization length, and activation volume. [References: 34]
机译:研究了纳米线阵列中磁化反转的静态和动态方面。通过将铁磁金属(Fe,Co和Ni)电沉积到直径小于5 nm的多孔阳极氧化铝模板中来生产阵列。纳米线的晶体结构是bcc(Fe)和fcc(Ni)以及fcc和hcp(Co)的混合物,晶粒尺寸为几纳米。研究了磁性能随温度的变化。矫顽力的温度依赖性可以通过能量垒上的热活化来理解,其中电场对电场的依赖性为3/2。矫顽力随直径的变化揭示了磁化反转机制的变化,从直径较小的准拟相干成核到直径卷曲的成核,其直径超过了交换长度所确定的临界值。准相干极限由一个模型描述,该模型可显式生成矫顽力,定位长度和激活体积的依赖于真实结构的表达式。 [参考:34]

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