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Arrays of nanoscale magnetic dots : fabrication by x-ray interference lithography and characterization.

机译:纳米级磁点阵列:通过X射线干涉光刻术和表征制造。

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摘要

X-ray interference lithography (XIL) was employed in combination with electrodeposition to fabricate arrays of nanoscale nickel dots which are uniform over 40 µm and have periods down to 71 nm. Using extreme-ultraviolet light, XIL has the potential to produce magnetic dot arrays over large areas with periods well below 50 nm, and down to a theoretical limit of 6.5 nm for a 13 nm x-ray wavelength. In the nickel dot arrays, we observed the effect of interdot magnetic stray field interactions. Measuring the hysteresis loops using the magneto-optical Kerr effect, a double switching via the vortex state was observed in the nickel dots with diameters down to 44 nm and large dot separations. As the dot separations are reduced to below around 50 nm a single switching, occurring by collective rotation of the magnetic spins, is favored due to interdot magnetic stray field interactions. This results in magnetic flux closure through several dots which could be visualized with micromagnetic simulations. Further evidence of the stray field interactions was seen in photoemission electron microscopy images, where bands of contrast corresponding to chains of coupled dots were observed.
机译:X射线干涉平版印刷术(XIL)与电沉积结合使用,制造了纳米级镍点阵列,该阵列在40 µm范围内均匀,周期低至71 nm。使用极紫外光,XIL有潜力在大面积上产生磁点阵列,周期远低于50 nm,对于13 nm X射线波长,其理论极限低至6.5 nm。在镍点阵列中,我们观察到了点间杂散磁场相互作用的影响。使用磁光克尔效应测量磁滞回线,在直径低至44 nm和较大点间距的镍点中观察到通过涡旋状态的双重切换。随着点间距减小到大约50 nm以下,由于点间磁杂散场相互作用,有利于通过自旋的集体旋转发生的单个开关。这导致通过几个点的磁通量封闭,这些点可以通过微磁模拟来可视化。在光发射电子显微镜图像中可以看到杂散场相互作用的进一步证据,在该图像中观察到对应于耦合点链的对比度带。

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