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Magnetization switching by combining electric field and spin-transfer torque effects in a perpendicular magnetic tunnel junction

机译:通过在垂直磁隧道结中结合电场和自旋转移转矩效应进行磁化切换

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摘要

Effective manipulation of magnetization orientation driven by electric field in a perpendicularly magnetized tunnel junction introduces technologically relevant possibility for developing low power magnetic memories. However, the bipolar orientation characteristic of toggle-like magnetization switching possesses intrinsic difficulties for practical applications. By including both the in-plane (>T//) and field-like (>T⊥) spin-transfer torque terms in the Landau-Lifshitz-Gilbert simulation, reliable and deterministic magnetization reversal can be achieved at a significantly reduced current density of 5×109 A/m2 under the co-action of electric field and spin-polarized current, provided that the electric-field pulse duration exceeds a certain critical value τc. The required critical τc decreases with the increase of >T⊥ strength because stronger >T⊥ can make the finally stabilized out-of-plane component of magnetization stay in a larger negative value. The power consumption for such kind of deterministic magnetization switching is found to be two orders of magnitude lower than that of the switching driven by current only.
机译:在垂直磁化的隧道结中由电场驱动的磁化取向的有效处理为开发低功率磁存储器引入了技术上相关的可能性。然而,肘形磁化开关的双极取向特性在实际应用中具有固有的困难。通过在Landau-Lifshitz-Gilbert模拟中同时包括平面(> T //)和类似场的(> T ⊥)自旋转移转矩项,可在电场和自旋极化电流共同作用下,以显着降低的电流密度5×10 9 A / m 2 可以实现确定性的磁化反转电场脉冲持续时间超过某个临界值τc。所需的临界τc随> T ⊥强度的增加而降低,因为较强的> T ⊥可以使最终稳定的磁化面外分量保持较大的负值。发现用于这种确定性磁化开关的功耗比仅由电流驱动的开关的功耗低两个数量级。

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