Zalewski T, Stupakiewicz A
Faculty of Physics, University of Bialystok, 15-245 Bialystok, Poland.
Rev Sci Instrum. 2021 Oct 1;92(10):103004. doi: 10.1063/5.0068304.
We present a laboratory system for single-shot magneto-optical (MO) imaging of ultrafast magnetization dynamics with less than 8 fs temporal, micrometer spatial resolutions and a MO Faraday's rotation sensitivity of 4 mdeg/μm. We create a stack of MO images repeatedly employing a single pair of pump and defocused probe pulses to induce and visualize MO changes in the sample. Both laser beams are independently wavelength-tunable, allowing for a flexible, resonant adjustable two-color pump and probe scheme. To increase the MO contrast, the probe beam is spatially filtered through a 50 μm aperture. We performed the all-optical switching experiment in Co-doped yttrium iron garnet films (YIG:Co) to demonstrate the capability of the presented method. We determine the spatiotemporal distribution of the effective field of photo-induced anisotropy, driving the all-optical switching of the magnetization in the YIG:Co film without an external magnetic field. Moreover, using this imaging method, we tracked the process of the laser-induced magnetization precession.
我们展示了一种用于超快磁化动力学单次磁光(MO)成像的实验室系统,其时间分辨率小于8飞秒,空间分辨率为微米级,磁光法拉第旋转灵敏度为4毫度/微米。我们通过重复使用一对泵浦和散焦探测脉冲来创建一系列MO图像,以诱导并可视化样品中的MO变化。两束激光均可独立调谐波长,从而实现灵活的、共振可调的双色泵浦-探测方案。为了提高MO对比度,探测光束通过一个50微米的孔径进行空间滤波。我们在掺钴钇铁石榴石薄膜(YIG:Co)中进行了全光开关实验,以证明所提出方法的能力。我们确定了光致各向异性有效场的时空分布,该分布在没有外部磁场的情况下驱动YIG:Co薄膜中磁化的全光开关。此外,使用这种成像方法,我们跟踪了激光诱导的磁化进动过程。