论文标题

各向异性激光脉冲诱导的磁化动力学在van der waals磁铁fe $ _3 $ gete $ _2 $

Anisotropic Laser-Pulse-Induced Magnetization Dynamics in van der Waals Magnet Fe$_3$GeTe$_2$

论文作者

Lichtenberg, Tom, Schippers, Casper F., van Kooten, Sjoerd C. P., Evers, Stijn G. F., Barcones, Beatriz, Guimarães, Marcos H. D., Koopmans, Bert

论文摘要

飞秒激光 - 脉冲激发提供了一种节能且快速地控制纳米级磁化的方法,从而为超快下一代数据操作和非挥发性存储设备提供了巨大的潜力。在过去的几年中,由于其低维度,出色的磁性和对外部刺激的反应很大,因此在过去的几年中,范德华的材料在过去几年中引起了很多关注。尽管如此,它们对FS激光脉冲激发的行为仍然在很大程度上尚未探索。在这里,我们研究了Fe $ _3 $ gete $ _2 $(FGT)的薄片的超快磁化动力学,并使用微观框架提取其内在磁性。我们发现,通过建模很好地描述了我们的数据,而FGT进行了缓慢的两步消极化,并且我们通过温度,磁场和激发量的函数实验地提取自旋 - 浮肿时间尺度。我们的观察结果表明,与理论上预期的大型自旋轨道耦合以及弱层间交换耦合相一致。当将磁化物从其量化轴拉开时,发现旋转窗户的概率会增加,从而向对该材料中旋转的外部控制打开门。我们的结果为FS激光脉冲激发时的动力学范德华材料提供了更深入的了解,为基于二维材料的超快速旋转旋转技术铺平了道路。

Femtosecond laser-pulse excitation provides an energy efficient and fast way to control magnetization at the nanoscale, providing great potential for ultrafast next-generation data manipulation and nonvolatile storage devices. Ferromagnetic van der Waals materials have garnered much attention over the past few years due to their low dimensionality, excellent magnetic properties, and large response to external stimuli. Nonetheless, their behaviour upon fs laser-pulse excitation remains largely unexplored. Here, we investigate the ultrafast magnetization dynamics of a thin flake of Fe$_3$GeTe$_2$ (FGT) and extract its intrinsic magnetic properties using a microscopic framework. We find that our data is well described by our modelling, with FGT undergoing a slow two-step demagnetization, and we experimentally extract the spin-relaxation timescale as a function of temperature, magnetic field and excitation fluence. Our observations indicate a large spin-flip probability in agreement with a theoretically expected large spin-orbit coupling, as well as a weak interlayer exchange coupling. The spin-flip probability is found to increase when the magnetization is pulled away from its quantization axis, opening doors to an external control over the spins in this material. Our results provide a deeper understanding of the dynamics van der Waals materials upon fs laser-pulse excitation, paving the way towards two-dimensional materials-based ultrafast spintronics.

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