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Additive Manufacturing of Co3Fe Nano-Probes for Magnetic Force Microscopy

机译:磁力显微镜用Co3Fe纳米探针的增材制造

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Magnetic force microscopy (MFM) is a powerful extension of atomic force microscopy (AFM), which mostly uses nano-probes with functional coatings for studying magnetic surface features. Although well established, additional layers inherently increase apex radii, which reduce lateral resolution and also contain the risk of delamination, rendering such nano-probes doubtful or even useless. To overcome these limitations, we now introduce the additive direct-write fabrication of magnetic nano-cones via focused electron beam-induced deposition (FEBID) using an HCo3Fe(CO)(12) precursor. The study first identifies a proper 3D design, confines the most relevant process parameters by means of primary electron energy and beam currents, and evaluates post-growth procedures as well. That way, highly crystalline nano-tips with minimal surface contamination and apex radii in the sub-15 nm regime are fabricated and benchmarked against commercial products. The results not only reveal a very high performance during MFM operation but in particular demonstrate virtually loss-free behavior after almost 8 h of continuous operation, thanks to the all-metal character. Even after more than 12 months of storage in ambient conditions, no performance loss is observed, which underlines the high overall performance of the here-introduced FEBID-based Co3Fe MFM nano-probes.
机译:磁力显微镜(MFM)是原子力显微镜(AFM)的有力扩展,原子力显微镜主要使用带有功能涂层的纳米探针来研究磁性表面特征。虽然已经建立,但额外的层本身会增加顶点半径,这会降低横向分辨率,并且还包含分层的风险,使这种纳米探针变得可疑甚至无用。为了克服这些限制,我们现在引入了使用HCo3Fe(CO)(12)前驱体通过聚焦电子束诱导沉积(FEBID)制造磁性纳米锥的增材直写制造。该研究首先确定适当的 3D 设计,通过初级电子能量和束流限制最相关的工艺参数,并评估生长后程序。这样,就可以制造出表面污染最小、顶点半径低于 15 nm 的高度结晶纳米尖端,并与商业产品进行基准测试。结果不仅揭示了MFM运行期间的非常高的性能,而且由于全金属特性,在连续运行近8小时后,特别是在几乎无损耗的运行后,表现出几乎无损耗的行为。即使在环境条件下储存超过 12 个月后,也没有观察到性能损失,这突显了这里介绍的基于 FEBID 的 Co3Fe MFM 纳米探针的整体性能。

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