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A study of perpendicular-anisotropy magnetic tunnel junction switched by spin-Hall-assisted spin-transfer torque

机译:自旋霍尔辅助自旋传递转矩转换垂直各向异性磁隧道结的研究

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Current-induced spin-transfer torque (STT) is a mainstream method of switching the magnetization of free layer of magnetic tunnel junctions (MTJs) [1-2]. However, currently STT-MTJ is suffering from speed and energy bottlenecks caused by two tradeoffs: firstly, since the critical write current (I) is proportional to the thermal stability barrier (Δ), it is difficult to reduce I without decreasing Δ. Secondly, the write current is limited to a relative small value to avoid the barrier breakdown, resulting in a low write speed. To overcome these bottlenecks, recent experiments [3-7] provide alternative write schemes in which spin Hall effect (SHE) and Rashba effect are used for switching the three-terminal MTJs (see Fig. 1). However, the applications of these schemes are hindered by some disadvantages: For switching a perpendicular-anisotropy MTJ (p-MTJ), both a charge current and an additional magnetic field are required (see Fig. 1(a)), which adds complexity to architecture. If an in-plane-anisotropy MTJ (i-MTJ) is used instead of p-MTJ, deterministic switching can be achieved by a charge current without the need of magnetic field (see Fig. 1(b)), but i-MTJ is inferior to p-MTJ in the scalability.
机译:电流感应的自旋传递转矩(STT)是切换磁性隧道结(MTJs)自由层磁化强度的主流方法[1-2]。然而,当前STT-MTJ正遭受由两个折衷引起的速度和能量瓶颈:首先,由于临界写入电流(I)与热稳定性势垒(Δ)成比例,因此难以在不减小Δ的情况下减小I。其次,将写电流限制在相对较小的值,以避免势垒击穿,从而导致低写速度。为了克服这些瓶颈,最近的实验[3-7]提供了另一种写方案,其中使用自旋霍尔效应(SHE)和拉什巴效应来切换三端MTJ(见图1)。但是,这些方案的应用受到一些缺点的阻碍:为了切换垂直各向异性MTJ(p-MTJ),既需要充电电流又需要额外的磁场(见图1(a)),这增加了复杂性建筑。如果使用面内各向异性MTJ(i-MTJ)代替p-MTJ,则可以通过充电电流实现确定性切换,而无需磁场(见图1(b)),但是i-MTJ在可扩展性方面不如p-MTJ。

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