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Magnetic imaging using geometrically constrained nano-domain walls

机译:使用几何限制的纳米域壁的磁成像

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摘要

Magnetic nanostructures, as part of hybrid CMOS technology, have the potential to overcome silicon's scaling limit. However, a major problem is how to characterize their magnetization without disturbing it. Magnetic force microscopy (MFM) offers a convenient way of studying magnetization, but spatial resolution and sensitivity are usually boosted at the cost of increasing probe-sample interaction. By using a single magnetic domain wall (DW), confined in a V-shape nanostructure fabricated at the probe apex, it is demonstrated here that the spatial resolution and the magnetic sensitivity can be decoupled and both enhanced. Indeed, owing to the nanostructure's strong shape anisotropy, DW-probes have 2 high and 2 low magnetic moment states with opposite polarities, characterised by a geometrically constrained pinned DW, and curled magnetization, respectively. Electron holography studies, supported by numerical simulations, and in situ MFM show that the DW-probe state can be controlled, and thus used as a switchable tool with a low/high stray field intensity.
机译:作为混合CMOS技术的一部分,磁性纳米结构具有克服硅缩放极限的潜力。但是,一个主要的问题是如何在不打扰磁力的情况下表征其磁化。磁力显微镜(MFM)提供了一种研究磁化的方便方法,但是空间分辨率和灵敏度通常以增加探针样本相互作用的成本增强。通过使用限制在探针顶处的V形纳米结构中的单个磁性域壁(DW),这里证明了空间分辨率和磁灵敏度可以解耦并增强。实际上,由于纳米结构的强形各向异性,DW探针具有2个高和2低磁矩状态,具有相反的极性,其特征分别为几何约束的固定DW和卷曲的磁化。由数值模拟支持的电子全息研究,原位MFM表明可以控制DW-probe状态,因此用作具有低/高弹性场强度的可切换工具。

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