论文标题
通过远程磁化纹理控制Spintronic THZ发射极的极化
Controlling polarization of spintronic THz emitter by remanent magnetization texture
论文作者
论文摘要
Terahertz(THZ)科学和技术为广泛应用的快速发展做出了贡献,并扩大了基本科学领域的前沿。 Spintronic Terahertz发射器提供了概念上的优势,因为磁性层中的自旋方向可以通过外部施加的磁场或由磁元素的特定形状确定的内部磁场分布来轻松控制。在这里,我们报告了一个基于飞秒激光脉冲驱动的微图案磁异质结构的可切换Terahertz源。我们表明,极化状态的确切可调性是由由微观结构的形状决定的磁层的基础磁化纹理促进的。这些结果还揭示了磁异质结构中超快自旋电流产生的不均匀磁化状态的潜在物理机制。我们的发现表明,可以通过使用偏置磁场对样品饱和来打开和关闭线性极化的THZ波的发射,从而为具有广泛潜在应用的集成在芯片THZ设备上打开引人入胜的观点。
Terahertz (THz) sciences and technologies have contributed to a rapid development of a wide range of applications and expanded the frontiers in fundamental science. Spintronic terahertz emitters offer conceptual advantages since the spin orientation in the magnetic layer can be easily controlled either by the externally applied magnetic field or by the internal magnetic field distribution determined by the specific shape of the magnetic elements. Here, we report a switchable terahertz source based on micropatterned magnetic heterostructures driven by femtosecond laser pulses. We show that the precise tunability of the polarization state is facilitated by the underlying magnetization texture of the magnetic layer that is dictated by the shape of the microstructure. These results also reveal the underlying physical mechanisms of a nonuniform magnetization state on the generation of ultrafast spin currents in the magnetic heterostructures. Our findings indicate that the emission of the linearly polarized THz waves can be switched on and off by saturating the sample using a biasing magnetic field, opening fascinating perspectives for integrated on-chip THz devices with wide-ranging potential applications.