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Effect of Current-Confined Path on Spin-Torque Noise in CPP-GMR Heads With Current Screen Layer

机译:电流限制路径对带有电流屏蔽层的CPP-GMR磁头中自旋扭矩噪声的影响

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We investigated the effect of current-confined path on spin-torque noise in current perpendicular to the plane giant magnetoresistive (CPP-GMR) heads with a current screen layer (a nano-oxide layer having current-confined paths). We found that both in measurement and calculation spin-torque noise of heads with a resistance area (RA) product of 1.0 $Omegacdot mu$m $^{2}$ was smaller than that with RA of 0.25 $ Omegacdot mu$ m$^{2}$ . We also found that the calculated spin-torque noise decreased as the exchange stiffness constant in the free layer increased. These behaviors indicate that the magnetization fluctuation in conductive areas can be reduced by the magnetic coupling with the magnetization in nonconductive areas. Accordingly, the current screen structure is effective in suppressing the spin-torque noise. To reduce spin-torque noise in CPP-GMR heads with a current screen layer, it is effective to reduce the area of each metallic nano-hole while keeping the total conductive area constant since the magnetic coupling between the magnetization in conductive and nonconductive areas keeps strong.
机译:我们研究了电流限制路径对垂直于带有电流屏蔽层(具有电流限制路径的纳米氧化物层)的平面巨磁阻(CPP-GMR)磁头的电流中自旋扭矩噪声的影响。我们发现,在测量和计算中,电阻面积(RA)乘积为1.0 $ Omegacdot mu $ m $ ^ {2} $的磁头的自旋扭矩噪声均小于RA为0.25 $ Omegacdot mu $ m $ ^的磁头的自旋扭矩噪声。 {2} $。我们还发现,随着自由层中交换刚度常数的增加,计算出的自旋扭矩噪声会降低。这些行为表明,可以通过与非导电区域中的磁化强度进行磁耦合来减少导电区域中的磁化强度波动。因此,当前的屏幕结构在抑制旋转扭矩噪声方面是有效的。为了减少带有当前屏蔽层的CPP-GMR磁头中的自旋扭矩噪声,在保持总导电面积恒定的同时,减小每个金属纳米孔的面积是有效的,因为导电和非导电区域中磁化之间的磁耦合保持不变强大。

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