自旋电子学
自旋霍尔效应
凝聚态物理
旋转泵
自旋等离子体光子学
自旋(空气动力学)
材料科学
有机半导体
自旋极化
磁电阻
自旋工程
自旋扩散
磁场
光电子学
物理
电子
铁磁性
量子力学
热力学
作者
Piotr Skalski,Olga Zadvorna,Deepak Venkateshvaran,Henning Sirringhaus
标识
DOI:10.1103/physrevmaterials.6.024601
摘要
Over the last two decades organic spintronics has developed into a striving field with exciting reports of long spin diffusion lengths and spin relaxation times in organic semiconductors (OSCs). Easily processed and inexpensive, OSCs are considered a potential alternative to inorganic materials for use in spintronic applications. Spin currents have been detected in a wide range of materials; however, there is still uncertainty over the origin of the signals. Recently, we explored spin transport through an organic semiconductor with lateral spin injection and detection architectures, where the injected spin current is detected nonlocally via spin-to-charge conversion in an inorganic detector. In this work we show that the widely used control experiments like linear power dependence and inversion of the signal with the magnetic field are not sufficient evidence of spin transport and can lead to an incorrect interpretation of the signal. Here, we use in-plane angular dependent measurements to separate pure spin signal from parasitic effects arising from spin rectification. Apart from well established anisotropic magnetoresistance and the anomalous Hall effect, we observe another spurious effect originating in Py and having the same angular symmetry as the inverse spin Hall effect (ISHE), which suggests it might be a self-induced ISHE.
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