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Calibration of multi-layered probes with low/high magnetic moments

机译:具有低/高磁矩的多层探头的校准

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摘要

We present a comprehensive method for visualisation and quantification of the magnetic stray field of magnetic force microscopy (MFM) probes, applied to the particular case of custom-made multi-layered probes with controllable high/low magnetic moment states. The probes consist of two decoupled magnetic layers separated by a non-magnetic interlayer, which results in four stable magnetic states: ±ferromagnetic (FM) and ±antiferromagnetic (A-FM). Direct visualisation of the stray field surrounding the probe apex using electron holography convincingly demonstrates a striking difference in the spatial distribution and strength of the magnetic flux in FM and A-FM states. In situ MFM studies of reference samples are used to determine the probe switching fields and spatial resolution. Furthermore, quantitative values of the probe magnetic moments are obtained by determining their real space tip transfer function (RSTTF). We also map the local Hall voltage in graphene Hall nanosensors induced by the probes in different states. The measured transport properties of nanosensors and RSTTF outcomes are introduced as an input in a numerical model of Hall devices to verify the probe magnetic moments. The modelling results fully match the experimental measurements, outlining an all-inclusive method for the calibration of complex magnetic probes with a controllable low/high magnetic moment.
机译:我们提出了一种用于可视化和量化磁力显微镜(MFM)探头的杂散磁场的综合方法,该方法适用于具有可控制的高/低磁矩状态的定制多层探头的特殊情况。探针由两个解耦的磁性层组成,这些磁性层被非磁性中间层隔开,从而产生四个稳定的磁性状态:铁磁(FM)和反铁磁(A-FM)。使用电子全息图直接观察探针顶点周围的杂散场令人信服地证明,在FM和A-FM状态下,磁通量的空间分布和强度存在显着差异。参考样品的原位MFM研究用于确定探针的开关场和空间分辨率。此外,通过确定探针磁矩的实际空间尖端传递函数(RSTTF),可以得到定量的探针磁矩值。我们还绘制了石墨烯霍尔纳米传感器中探针在不同状态下的局部霍尔电压。在霍尔器件的数值模型中,将测得的纳米传感器的传输特性和RSTTF结果作为输入引入,以验证探针的磁矩。建模结果与实验测量完全匹配,概述了具有可控的低/高磁矩的复杂磁探针校准的全包方法。

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