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Thermal effects in domain wall motion: Micromagnetic simulations and analytical model

机译:畴壁运动中的热效应:微磁模拟和解析模型

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Micromagnetic simulations are used to study the effect of thermal fluctuations in domain wall motion driven by either an external field or an in-plane spin-polarized current in ferromagnetic nanowires of rectangular cross section. For wires with no edge roughness, simulations reveal that thermal effects do not significantly modify field-driven and current-driven domain wall dynamics at T=0 if nonadiabatic contributions are taken into account in the latter. If the perfect adiabatic approximation is assumed, however, no-null velocities are obtained for currents smaller than the critical value below which there is no domain wall propagation in the deterministic case. In order to mimic experimental conditions and carry out more realistic simulations, we have introduced some edge roughness in the nanowire, which leads into a characteristic pinning force for domain walls. If the driving force, either field or current, is large enough to overcome the roughness pinning force, the wall velocities are found to be similar to those at T=0. However, finite positive velocities are obtained for fields and currents smaller than the deterministic depinning threshold when thermal perturbations are included. In this thermally activated regime, the velocity increases exponentially with both field and current. Moreover, our results are found to be in good quantitative agreement with some experimental data. In the last part of this work, the one-dimensional model for domain wall motion derived by Li et al. [J. Appl. Phys. 99, 08Q702 (2006)] is extended to include thermal perturbations following the Langevin formalism of the Brownian motion. The predictions of the model are compared with those of micromagnetic simulations finding good agreement between them.
机译:微磁模拟用于研究矩形横截面的铁磁纳米线中由外场或平面内自旋极化电流驱动的畴壁运动中的热涨落的影响。对于没有边缘粗糙度的导线,仿真显示,如果在T = 0时考虑了非绝热贡献,则热效应不会显着改变T = 0时场驱动和电流驱动的畴壁动力学。但是,如果采用理想的绝热近似,则对于小于临界值的电流,不会获得零速度,在确定性情况下,低于临界值时,没有畴壁传播。为了模拟实验条件并进行更真实的仿真,我们在纳米线中引入了一些边缘粗糙度,这导致了畴壁的特征钉扎力。如果驱动力(磁场或电流)足够大,足以克服粗糙钉扎力,则发现壁速类似于T = 0时的壁速。但是,当包括热扰动时,对于小于确定性固定销阈值的场和电流,可获得有限的正速度。在这种热激活状态下,速度随磁场和电流呈指数增长。此外,发现我们的结果与一些实验数据具有良好的定量一致性。在这项工作的最后一部分中,Li等人推导了畴壁运动的一维模型。 [J.应用物理99,08Q702(2006)]扩展为包括布朗运动朗格文形式主义之后的热扰动。将模型的预测与微磁模拟的预测进行比较,发现它们之间具有良好的一致性。

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