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Roles of Joule heating and spin-orbit torques in the direct current induced magnetization reversal

机译:焦耳加热和旋转轨道扭矩在直流诱导磁化反转中的作用

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Current-induced magnetization reversal via spin-orbit torques (SOTs) has been intensively studied in heavy-metal/ferromagnetic-metal/oxide heterostructures due to its promising application in low-energy consumption logic and memory devices. Here, we systematically study the function of Joule heating and SOTs in the current-induced magnetization reversal using Pt/Co/SmOx and Pt/Co/AlOx structures with different perpendicular magnetic anisotropies (PMAs). The SOT-induced effective fields, anisotropy field, switching field and switching current density ( J c ) are characterized using electric transport measurements based on the anomalous Hall effect and polar magneto-optical Kerr effect (MOKE). The results show that the current-generated Joule heating plays an assisted role in the reversal process by reducing switching field and enhancing SOT efficiency. The out-of-plane component of the damping-like-SOT effective field is responsible for the magnetization reversal. The obtained J c for Pt/Co/SmOx and Pt/Co/AlOx structures with similar spin Hall angles and different PMAs remains roughly constant, revealing that the coherent switching model cannot fully explain the current-induced magnetization reversal. In contrast, by observing the domain wall nucleation and expansion using MOKE and comparing the damping-like-SOT effective field and switching field, we conclude that the current-induced magnetization reversal is dominated by the depinning model and J c also immensely relies on the depinning field.
机译:由于其在低能耗逻辑和存储器件中的希望应用,通过自旋轨道扭矩(SOTS)的电流诱导的磁化反转通过旋转轨道扭矩(SOTS)进行了集中研究。在这里,我们通过PT / CO / SMO x 和PT / CO / ALO x 结构来系统地研究焦耳加热和sots在电流诱导的磁化反转中的功能。垂直磁各向异性(PMA)。 SOT诱导的有效领域,各向异性场,开关场和开关电流密度(J C )的特征在于,使用基于异常霍尔效应和极磁光克尔效应(MOKE)的电气传输测量。结果表明,目前产生的焦耳加热通过减少开关场并提高SOT效率,在反转过程中起着辅助作用。阻尼型 - SOT有效场的平面外分量负责磁化反转。所获得的j c 用于pt / co / smo x 和pt / co / alo x 结构,具有类似的旋转霍尔角和不同的pmas仍然大致保持恒定,揭示相干开关模型不能完全解释电流诱导的磁化反转。相反,通过观察域壁成核和膨胀,使用剧集和比较阻尼的SOT有效场和开关领域,我们得出结论,电流诱导的磁化反转由分解模型和J C 也非常依赖于分析领域。

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