School of Physics and Astronomy, University of Leeds, Leeds LS2 9JT, United Kingdom.
Phys Rev Lett. 2010 Apr 2;104(13):137205. doi: 10.1103/PhysRevLett.104.137205.
We have studied field- and current-driven domain-wall (DW) creep motion in a perpendicularly magnetized Co/Pt multilayer wire by real-time Kerr microscopy. The application of a dc current of density of approximately < 10(7) A/cm2 assisted only the DW creeping under field in the same direction as the electron flow, a signature of spin-transfer torque effects. We develop a model dealing with both bidirectional spin-transfer effects and Joule heating, with the same dynamical exponent mu=1/4 for both field- and current-driven creep, and use it to quantify the spin-transfer efficiency as 3.6+/-0.6 Oe cm2/MA in our wires, confirming the significant nonadiabatic contribution to the spin torque.
我们通过实时克尔显微镜研究了在垂直磁化的 Co/Pt 多层线中磁场和电流驱动的畴壁(DW)蠕动运动。施加约为 < 10(7) A/cm2 的直流电流仅辅助与电子流方向相同的磁场下 DW 的蠕动,这是自旋转移力矩效应的特征。我们开发了一个模型,同时处理双向自旋转移效应和焦耳加热,对于磁场和电流驱动的蠕动,具有相同的动力学指数 mu=1/4,并使用它来量化我们的线中的自旋转移效率为 3.6+/-0.6 Oe cm2/MA,证实了自旋扭矩的显著非绝热贡献。