论文标题

光线和微波驱动的自旋泵送在Fegab-Bisb界面上

Light and microwave driven spin pumping across FeGaB-BiSb interface

论文作者

Sharma, Vinay, Wu, Weipeng, Bajracharya, Prabesh, To, Duy Quang, Johnson, Anthony, Janotti, Anderson, Bryant, Garnett W., Gundlach, Lars, Jungfleisch, M. Benjamin, Budhani, Ramesh C.

论文摘要

具有较大自旋霍尔电导率的3-D拓扑绝缘子(TI)已成为自旋应用的潜在候选者。在这里,我们报告了旋转的指控转换,以非晶的非晶子(FM)fe_ {78} ga_ {13} b_ {9}(fegab)和3-D Ti bi_ {85} sb_ {15} SB_ {15}(Bisb)激活了两种辅助技术:直流磁化测量值建立了Fegab膜的软磁特征,该特征在Fegab-Bisb的异质结构中保持不变。宽带铁电磁共振(FMR)研究表明,随着自旋角动量泄漏到Ti层,旋转混合电导率(5.03 x 10^{19} M^{ - 2})的阻尼增强了。分析了通过反自旋霍尔效应在TI层产生的磁场控制的双极直流电压,以提取BISB的旋转角度和自旋扩散长度的值。从飞秒光脉冲诱导的Terahertz发射的测量结果得出的自旋泵浦参数与FMR的结果一致。 Kubo-Bastin公式和紧密结合模型计算阐明了Ti膜的厚度依赖性旋转电导率,并具有与实验数据非常一致的预测。我们的结果表明,室温沉积的无定形和多晶质链异质结构为创建新型旋转轨道扭矩设备提供了有前途的平台。

3-D topological insulators (TI) with large spin Hall conductivity have emerged as potential candidates for spintronic applications. Here, we report spin to charge conversion in bilayers of amorphous ferromagnet (FM) Fe_{78}Ga_{13}B_{9} (FeGaB) and 3-D TI Bi_{85}Sb_{15} (BiSb) activated by two complementary techniques: spin pumping and ultrafast spin-current injection. DC magnetization measurements establish the soft magnetic character of FeGaB films, which remains unaltered in the heterostructures of FeGaB-BiSb. Broadband ferromagnetic resonance (FMR) studies reveal enhanced damping of precessing magnetization and large value of spin mixing conductance (5.03 x 10^{19} m^{-2}) as the spin angular momentum leaks into the TI layer. Magnetic field controlled bipolar dc voltage generated across the TI layer by inverse spin Hall effect is analyzed to extract the values of spin Hall angle and spin diffusion length of BiSb. The spin pumping parameters derived from the measurements of the femtosecond light-pulse-induced terahertz emission are consistent with the result of FMR. Kubo-Bastin formula and tight-binding model calculations shed light on the thickness-dependent spin-Hall conductivity of the TI films, with predictions that are in remarkable agreement with the experimental data. Our results suggest that room temperature deposited amorphous and polycrystalline heterostructures provide a promising platform for creating novel spin orbit torque devices.

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