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Magnetization reversal of an individual exchange-biased permalloy nanotube

机译:单个交换偏置的坡莫合金纳米管的磁化逆转

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摘要

We investigate the magnetization reversal mechanism in an individual permalloy (Py) nanotube (NT) using a hybrid magnetometer consisting of a nanometer-scale SQUID (nanoSQUID) and a cantilever torque sensor. The Py NT is affixed to the tip of a Si cantilever and positioned in order to optimally couple its stray flux into a Nb nanoSQUID. We are thus able to measure both the NT's volume magnetization by dynamic cantilever magnetometry and its stray flux using the nanoSQUID. We observe a training effect and a temperature dependence in the magnetic hysteresis, suggesting an exchange bias. We find a low blocking temperature TB=18±2 K, indicating the presence of a thin antiferromagnetic native oxide, as confirmed by x-ray absorption spectroscopy on similar samples. Furthermore, we measure changes in the shape of the magnetic hysteresis as a function of temperature and increased training. These observations show that the presence of a thin exchange-coupled native oxide modifies the magnetization reversal process at low temperatures. Complementary information obtained via cantilever and nanoSQUID magnetometry allows us to conclude that, in the absence of exchange coupling, this reversal process is nucleated at the NT's ends and propagates along its length as predicted by theory.
机译:我们使用由纳米级SQUID(nanoSQUID)和悬臂扭矩传感器组成的混合磁力计研究单个坡莫合金(Py)纳米管(NT)中的磁化反转机理。 Py NT固定在Si悬臂梁的尖端并进行定位,以便将其杂散通量最佳地耦合到Nb nanoSQUID中。因此,我们能够使用nanoSQUID通过动态悬臂磁强法测量NT的体积磁化强度及其杂散通量。我们观察到磁滞现象的训练效果和温度依赖性,表明存在交换偏差。我们发现较低的阻隔温度TB = 18±2 K,表明存在薄的反铁磁性天然氧化物,这是通过对相似样品的X射线吸收光谱法证实的。此外,我们测量磁滞形状的变化随温度和训练强度的增加而变化。这些观察结果表明,薄的交换耦合天然氧化物的存在改变了低温下的磁化反转过程。通过悬臂和nanoSQUID磁力计获得的补充信息使我们得出结论,在没有交换耦合的情况下,这种逆转过程在NT端成核,并沿理论长度沿其长度传播。

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