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Magnetic hardening of Fe30Co70 nanowires

机译:Fe30Co70纳米线的磁硬化

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摘要

3d transition metal-based magnetic nanowires (NWs) are currently considered as potential candidates for alternative rare-earth-free alloys as novel permanent magnets. Here, we report on the magnetic hardening of Fe30Co70 nanowires in anodic aluminium oxide templates with diameters of 20 nm and 40 nm (length 6 mu m and 7.5 mu m, respectively) by means of magnetic pinning at the tips of the NWs. We observe that a 3-4 nm naturally formed ferrimagnetic FeCo oxide layer covering the tip of the FeCo NW increases the coercive field by 20%, indicating that domain wall nucleation starts at the tip of the magnetic NW. Ferromagnetic resonance (FMR) measurements were used to quantify the magnetic uniaxial anisotropy energy of the samples. Micromagnetic simulations support our experimental findings, showing that the increase of the coercive field can be achieved by controlling domain wall nucleation using magnetic materials with antiferromagnetic exchange coupling, i.e. antiferromagnets or ferrimagnets, as a capping layer at the nanowire tips.
机译:基于3d过渡金属的磁性纳米线(NWs)当前被认为是替代稀土合金作为新型永磁体的潜在候选材料。在这里,我们报道了在NWs尖端通过磁钉扎法对直径为20 nm和40 nm(分别为长度6μm和7.5μm)的阳极氧化铝模板中的Fe30Co70纳米线进行的磁性硬化。我们观察到,覆盖FeCo NW尖端的3-4 nm自然形成的亚铁磁性FeCo氧化物层使矫顽场增加了20%,这表明畴壁成核始于磁性NW的尖端。使用铁磁共振(FMR)测量来量化样品的磁单轴各向异性能。微磁模拟支持了我们的实验结果,表明通过使用具有反铁磁交换耦合的磁性材料(即反铁磁或铁磁)作为纳米线尖端的覆盖层,通过控制畴壁成核,可以实现矫顽场的增加。

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