论文标题
次级自旋电流驱动的有效THZ Spintronic发射器
Secondary spin current driven efficient THz spintronic emitters
论文作者
论文摘要
飞秒激光引起的Ferromagnet(FM)/重金属(HM)异质结构的光激发通过发射宽带Terahertz频率引起了人们的注意。该现象依赖于超快自旋电流的形成,这主要归因于FM层的直接光激发。但是,我们揭示了在此过程中,FM层还经历了由HM层的热电子引起的二次激发,该热电子穿越FM/HM界面并在FM中传递额外的能量。因此,产生的二次旋转增强了总自旋电流的形成,并导致放大的Spintronic Terahertz发射。结果还强调了次级自旋电流的重要性,即当使用较厚HM的FM/HM异质结构时,它甚至超过了主要自旋电流。开发了一个分析模型,以提供对单个层中微观过程的更深入的见解,从而强调了广义超快超级旋转传输机制。
Femtosecond laser-induced photoexcitation of ferromagnet (FM)/heavy metal (HM) heterostructures have attracted attention by emitting broadband terahertz frequencies. The phenomenon relies on the formation of ultrafast spin current, which is largely attributed to the direct photoexcitation of the FM layer. However, we reveal that during the process, the FM layer also experiences a secondary excitation led by the hot electrons from the HM layer that travel across the FM/HM interface and transfer additional energy in the FM. Thus, the generated secondary spins enhance the total spin current formation and lead to amplified spintronic terahertz emission. The results also emphasize the significance of the secondary spin current, which even exceeds the primary spin currents when FM/HM heterostructures with thicker HM are used. An analytical model is developed to provide deeper insights into the microscopic processes within the individual layers, underlining the generalized ultrafast superdiffusive spin-transport mechanism.