论文标题

具有光学表面模式的纳米光结构,用于可调旋转电流

Nanophotonic structures with optical surface modes for tunable spin current generation

论文作者

Shilina, P. V., Ignatyeva, D. O., Kapralov, P. O., Sekatskii, S. K., Nur-E-Alam, M., Vasiliev, M., Alameh, K., Achanta, V. G., Song, Y., Hamidi, S. M., Zvezdin, A. K., Belotelov, V. I.

论文摘要

基于旋转的设备中自旋电流产生的热量通常远低于传统电子设备中电流流量产生的热量。但是,基于自旋泵送和自旋霍尔效应激发自旋电流的常规方法的效率有限,这限制了它们对可行的自旋设备的应用。我们提出了一种新型的基于光子晶体(PC)的结构,以通过自旋Seebeck和反旋转霍尔效应进行高效且可调的光学诱导的自旋发电。在实验上证明,光学表面模式位于由铁磁层覆盖的PC表面和具有巨大的自旋轨道耦合(SOC)的材料(SIC)尤其提高了光学诱导的自旋电流的效率,并通过修饰光波长或发射距离来提供可调性。多达100%的入射光功率可以转移到SOC层中的热量,因此可以转移到旋转电流中。重要的是,即使对于超薄的SOC层,也可以使用高效率。此外,基于PC的自旋纳米结构的表面图案允许在模式尺度而不是激光束直径处局部生成自旋电流。

Heat generated by spin currents in spintronics-based devices is typically much less than that generated by charge current flows in conventional electronic devices. However, the conventional approaches for excitation of spin currents based on spin-pumping and spin Hall effect are limited in efficiency which restricts their application for viable spintronic devices. We propose a novel type of photonic-crystal (PC) based structures for efficient and tunable optically-induced spin current generation via the Spin Seebeck and inverse spin Hall effects. It is experimentally demonstrated that optical surface modes localized at the PC surface covered by ferromagnetic layer and materials with giant spin-orbit coupling (SOC) notably increase the efficiency of the optically-induced spin current generation and provides its tunability by modifying light wavelength or angle of incidence. Up to 100% of the incident light power can be transferred to heat within the SOC layer and, therefore, to spin current. Importantly, high efficiency becomes accessible even for ultra-thin SOC layers. Moreover, surface patterning of the PC-based spintronic nanostructure allows local generation of spin currents at the pattern scales rather than diameter of the laser beam.

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