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Thermally Excited Low Frequency Magnetic Noise in CPP Structure MR Heads

机译:CPP结构MR磁头中的热激励低频电磁噪声

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1/f-type of low frequency noise is widely observed in today''s state-of-the-art tunneling-magneto-resistive (TMR) and current-perpendicular-to-plane (CPP), and giant-magneto-resistive (GMR) heads. In this paper, the 1/f-type magnetic noise arising from the thermally excited low frequency edge magnetization switch of the free layer is studied by micromagnetic simulation. It is found that although the free layer dimension is in the single domain regime, the edge magnetization random switching related to the thermal excitation and insufficient hard bias field on sensor edge can be a significant low frequency noise contributor in TMR/CPP GMR heads. A strong local hard bias (HB) field at sensor edge that pins the free layer edge magnetization is found to be more critical than a strong averaged HB field across the sensor to avoid magnetic 1/f-type noise. The simulation study shows that a high HB field gradient from sensor edge to center is preferred to maintain a low noise sensor while still achieving high sensitivity. This paper will also discuss the roles of free layer thickness, sensor geometry, current field, temperature, and air-bearing surface physical defect in the behavior of this edge flipping noise
机译:在当今最先进的隧道磁阻(TMR)和电流垂直于平面(CPP)以及巨磁阻中,普遍观察到1 / f型低频噪声(GMR)负责人。通过微磁模拟研究了自由层热激发低频边缘磁化开关产生的1 / f型磁噪声。已经发现,尽管自由层尺寸在单畴范围内,但与热激励有关的边缘磁化随机切换和传感器边缘上的硬偏置场不足可能是TMR / CPP GMR磁头中的重要低频噪声源。发现在传感器边缘的一个强局部硬偏置(HB)场比固定在自由层边缘的磁化强度要强得多,这比整个传感器上的一个强大的平均HB场更重要,以避免产生1 / f型磁性噪声。仿真研究表明,从传感器边缘到中心的高HB场梯度对于保持低噪声传感器同时仍能实现高灵敏度是更可取的。本文还将讨论自由层厚度,传感器几何形状,电流场,温度和空气轴承表面物理缺陷在这种边缘翻转噪声行为中的作用。

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