Characterization of dynamic nonlinear effects in MTJ-based magnetic sensors

E. Auerbach, N. Leder, S. Gider, D. Suess, H. Arthaber
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Abstract

The MgO-based magnetic tunnel junction (MTJ) is the basis of modern hard disk drives' magnetic read sensors. Within its operating bandwidth, the sensor's performance is significantly affected by nonlinear and oscillating behavior arising from the MTJ's magnetization dynamics at microwave frequencies. Static I-V curve measurements are commonly used to characterize sensor's nonlinear effects. Unfortunately, these do not sufficiently capture the MTJ's magnetization dynamics. In this paper, we demonstrate the use of the two-tone measurement technique for full treatment of the sensor's nonlinear effects in conjunction with dynamic ones. This approach is new in the field of magnetism and magnetic materials, and it has its challenges due to the nature of the device. Nevertheless, the experimental results demonstrate how the two-tone measurement technique can be used to characterize magnetic sensor nonlinear properties.
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基于mtj的磁传感器动态非线性效应的表征
基于mgo的磁隧道结(MTJ)是现代硬盘驱动器磁读传感器的基础。在其工作带宽内,MTJ在微波频率下的磁化动力学产生的非线性和振荡行为对传感器的性能有显著影响。静态I-V曲线测量通常用于表征传感器的非线性效应。不幸的是,这些并不能充分捕捉到MTJ的磁化动力学。在本文中,我们演示了使用双音测量技术来充分处理传感器的非线性效应和动态效应。这种方法是磁学和磁性材料领域的新方法,由于设备的性质,它有其挑战。然而,实验结果表明,双音测量技术可以用来表征磁传感器的非线性特性。
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