论文标题
非磁性材料中的Attsond磁化动力学由强烈的飞秒激光器驱动
Attosecond magnetization dynamics in non-magnetic materials driven by intense femtosecond lasers
论文作者
论文摘要
已知具有超短激光脉冲的辐照固体可以启动飞秒时间尺寸磁化动力学。但是,尚未观察或预测次秒旋转动力学。在这里,我们在高度非共振的强场式中探索了超快的轻型旋转动力学。通过最先进的AB-Initio计算,我们预测,非磁性物质可以通过动力学的极其非线性的自旋流动过程瞬时转化为磁性物质,该过程发生在Attsecond时尺度上,并通过多型光子和旋转孔相互作用的组合介导。这些是非扰动的非谐振类似物,类似于逆法拉第效应,随着电子获得角动量,从周期到周期构建。值得注意的是,我们表明,即使对于线性极化的驾驶,在系统中没有直观地期望任何磁反应的情况下,随着系统与光的相互作用,磁化值会瞬时振荡。通过固体中的横向异常的光驱动电流实现了这种振荡响应,通常发生在约500个attoseconds的时间尺度上。我们进一步证明,可以通过调整激光波长和强度来控制磁化速度。概述并模拟了通过泵探针瞬态吸收光谱测量这些动力学的实验设置。我们的结果为超快操纵磁性的新政权铺平了道路。
Irradiating solids with ultrashort laser pulses is known to initiate femtosecond timescale magnetization dynamics. However, sub-femtosecond spin dynamics have not yet been observed or predicted. Here, we explore ultrafast light-driven spin dynamics in a highly non-resonant strong-field regime. Through state-of-the-art ab-initio calculations, we predict that a non-magnetic material can be transiently transformed into a magnetic one via dynamical extremely nonlinear spin-flipping processes, which occur on attosecond timescales and are mediated by a combination of multi-photon and spin-orbit interactions. These are non-perturbative non-resonant analogues to the inverse Faraday effect that build up from cycle-to-cycle as electrons gain angular momentum. Remarkably, we show that even for linearly polarized driving, where one does not intuitively expect any magnetic response, the magnetization transiently oscillates as the system interacts with light. This oscillating response is enabled by transverse anomalous light-driven currents in the solid, and typically occurs on timescales of ~500 attoseconds. We further demonstrate that the speed of magnetization can be controlled by tuning the laser wavelength and intensity. An experimental set-up capable of measuring these dynamics through pump-probe transient absorption spectroscopy is outlined and simulated. Our results pave the way for new regimes of ultrafast manipulation of magnetism.