Exchange Bias Effect of Ni@(NiO,Ni(OH)2) Core/Shell Nanowires Synthesized by Electrochemical Deposition in Nanoporous Alumina Membranes

交换偏差 材料科学 矫顽力 纳米线 铁磁性 非阻塞I/O 自旋电子学 纳米技术 纳米孔 磁化 纳米晶材料 热电效应 过电位 反铁磁性 磁各向异性 凝聚态物理 化学工程 磁场 电化学 电极 化学 物理 工程类 热力学 物理化学 量子力学 催化作用 生物化学
作者
Javier Garcı́a,R. Gutiérrez,Ana Silvia González,Ana Isabel Jiménez-Ramírez,Yolanda Álvarez,V. Vega,Heiko Reith,Karin Leistner,Carlos Luna,Kornelius Nielsch,V.M. Prida
出处
期刊:International Journal of Molecular Sciences [Multidisciplinary Digital Publishing Institute]
卷期号:24 (8): 7036-7036 被引量:6
标识
DOI:10.3390/ijms24087036
摘要

Tuning and controlling the magnetic properties of nanomaterials is crucial to implement new and reliable technologies based on magnetic hyperthermia, spintronics, or sensors, among others. Despite variations in the alloy composition as well as the realization of several post material fabrication treatments, magnetic heterostructures as ferromagnetic/antiferromagnetic coupled layers have been widely used to modify or generate unidirectional magnetic anisotropies. In this work, a pure electrochemical approach has been used to fabricate core (FM)/shell (AFM) Ni@(NiO,Ni(OH)2) nanowire arrays, avoiding thermal oxidation procedures incompatible with integrative semiconductor technologies. Besides the morphology and compositional characterization of these core/shell nanowires, their peculiar magnetic properties have been studied by temperature dependent (isothermal) hysteresis loops, thermomagnetic curves and FORC analysis, revealing the existence of two different effects derived from Ni nanowires’ surface oxidation over the magnetic performance of the array. First of all, a magnetic hardening of the nanowires along the parallel direction of the applied magnetic field with respect their long axis (easy magnetization axis) has been found. The increase in coercivity, as an effect of surface oxidation, has been observed to be around 17% (43%) at 300 K (50 K). On the other hand, an increasing exchange bias effect on decreasing temperature has been encountered when field cooling (3T) the oxidized Ni@(NiO,Ni(OH)2) nanowires below 100 K along their parallel lengths.
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