Interface-enhanced helicity dependent photocurrent in metal/semimetal bilayers

H. Hirose, M. Kawaguchi, Y. Lau, Z. Chi, F. Freimuth, K. Takanashi, M. Hayashi
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引用次数: 3

Abstract

One of the hallmarks of light-spin interaction in solids is the appearance of photocurrent that depends on the light helicity. Recent studies have shown that helicity dependent photocurrent (HDP) emerges due to light induced spin current and the inverse spin Hall effect of semimetal thin films. We have studied HDP in metal/semimetal bilayers. Compared to Bi single layer films, we find the HDP is enhanced in metal/Bi bilayers. For the bilayers, the sign of HDP under back illumination reverses from that of front illumination. The back illumination photocurrent is the largest for Ag/Bi bilayers among the bilayers studied. Using a diffusive spin transport model, we show that the HDP sign reversal under back illumination is caused by spin absorption and spin to charge conversion at the interface. Such interfacial effects contribute to the HDP enhancement under front illumination for the bilayers when the Bi layer thickness is small. These results show that the HDP can be used to assess interface states with strong spin orbit coupling.
金属/半金属双分子层中界面增强的螺旋度相关光电流
固体中光自旋相互作用的标志之一是光电流的出现,这取决于光的螺旋度。近年来的研究表明,由于光诱导自旋电流和半金属薄膜的逆自旋霍尔效应,产生了螺旋相关的光电流。我们研究了金属/半金属双分子层中的HDP。与Bi单层膜相比,我们发现金属/Bi双层膜的HDP增强了。对于双层结构,背光下HDP的符号与正光下相反。在所研究的双分子膜中,银/铋双分子膜的背照光电流最大。利用扩散自旋输运模型,我们证明了反向光照下的HDP符号反转是由界面处的自旋吸收和自旋-电荷转换引起的。当双相层厚度较小时,这种界面效应有助于双相层在正面光照下的HDP增强。这些结果表明,HDP可以用来评估具有强自旋轨道耦合的界面态。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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