Institut Jean Lamour, UMR 7198, CNRS-Université de Lorraine, Campus ARTEM, 2 Allée André Guinier, BP 50840, 54011 Nancy, France.
Nanoscale. 2018 May 31;10(21):10213-10220. doi: 10.1039/c8nr02250j.
Remanent spin injection into a spin light emitting diode (spin-LED) at zero magnetic field is a prerequisite for future application of spin optoelectronics. Here, we demonstrate the remanent spin injection into GaAs based LEDs with a thermally stable Mo/CoFeB/MgO spin injector. A systematic study of magnetic properties, polarization-resolved electroluminescence (EL) and atomic-scale interfacial structures has been performed in comparison with the Ta/CoFeB/MgO spin injector. The perpendicular magnetic anisotropy (PMA) of the Mo/CoFeB/MgO injector shows more advanced thermal stability than that of the Ta/CoFeB/MgO injector and robust PMA can be maintained up to 400 °C annealing. The remanent circular polarization (PC) of EL from the Mo capped spin-LED reaches a maximum value of 10% after 300 °C annealing, and even remains at 4% after 400 °C annealing. In contrast, the Ta capped spin-LED almost completely loses the remanent PC under 400 °C annealing. Combined advanced electron microscopy and spectroscopy studies reveal that a large amount of Ta diffuses into the MgO tunneling barrier through the CoFeB layer after 400 °C annealing. However, the diffusion of Mo into CoFeB is limited and never reaches the MgO barrier. These findings afford a comprehensive perspective to use the highly thermally stable Mo/CoFeB/MgO spin injector for efficient electrical spin injection in remanence.
在零磁场下将剩余自旋注入自旋发光二极管(spin-LED)是自旋光电应用的前提。在这里,我们展示了具有热稳定的 Mo/CoFeB/MgO 自旋注入器的 GaAs 基 LED 的剩余自旋注入。与 Ta/CoFeB/MgO 自旋注入器相比,我们对磁性、偏振分辨电致发光(EL)和原子尺度界面结构进行了系统的研究。Mo/CoFeB/MgO 注入器的垂直各向异性(PMA)表现出比 Ta/CoFeB/MgO 注入器更先进的热稳定性,高达 400°C 的退火后仍能保持稳定的 PMA。Mo 覆盖的自旋-LED 的 EL 的剩余圆偏振(PC)在 300°C 退火后达到 10%的最大值,甚至在 400°C 退火后仍保持在 4%。相比之下,Ta 覆盖的自旋-LED 在 400°C 退火后几乎完全失去了剩余 PC。综合先进的电子显微镜和光谱研究表明,大量 Ta 通过 CoFeB 层扩散到 MgO 隧道势垒中,在 400°C 退火后。然而,Mo 向 CoFeB 的扩散是有限的,从未到达 MgO 势垒。这些发现为在残余状态下使用高度热稳定的 Mo/CoFeB/MgO 自旋注入器进行高效电自旋注入提供了全面的视角。