Stanford Institute for Materials and Energy Sciences, SLAC National Accelerator Laboratory , 2575 Sand Hill Road, Menlo Park, California 94025, United States.
van der Waals-Zeeman Institute, University of Amsterdam , 1018XE Amsterdam, The Netherlands.
Nano Lett. 2017 Apr 12;17(4):2426-2432. doi: 10.1021/acs.nanolett.7b00052. Epub 2017 Mar 17.
Light-matter interaction at the nanoscale in magnetic materials is a topic of intense research in view of potential applications in next-generation high-density magnetic recording. Laser-assisted switching provides a pathway for overcoming the material constraints of high-anisotropy and high-packing density media, though much about the dynamics of the switching process remains unexplored. We use ultrafast small-angle X-ray scattering at an X-ray free-electron laser to probe the magnetic switching dynamics of FePt nanoparticles embedded in a carbon matrix following excitation by an optical femtosecond laser pulse. We observe that the combination of laser excitation and applied static magnetic field, 1 order of magnitude smaller than the coercive field, can overcome the magnetic anisotropy barrier between "up" and "down" magnetization, enabling magnetization switching. This magnetic switching is found to be inhomogeneous throughout the material with some individual FePt nanoparticles neither switching nor demagnetizing. The origin of this behavior is identified as the near-field modification of the incident laser radiation around FePt nanoparticles. The fraction of not-switching nanoparticles is influenced by the heat flow between FePt and a heat-sink layer.
磁材料中纳米尺度的光物质相互作用是一个研究热点,因为它在下一代高密度磁记录中有潜在的应用。激光辅助切换为克服高各向异性和高密度介质的材料限制提供了一种途径,尽管切换过程的动力学仍有许多有待探索。我们使用自由电子激光的超快小角度 X 射线散射,在光学飞秒激光脉冲激发下,探测嵌入在碳基质中的 FePt 纳米颗粒的磁切换动力学。我们观察到,激光激发和外加静态磁场的组合(比矫顽场小一个数量级)可以克服“上”和“下”磁化之间的磁各向异性势垒,从而实现磁化切换。发现这种磁切换在整个材料中是不均匀的,有些单个的 FePt 纳米颗粒既不切换也不解磁。这种行为的起源被确定为 FePt 纳米颗粒周围入射激光辐射的近场修饰。不切换纳米颗粒的分数受到 FePt 和热沉层之间热流的影响。