论文标题
单个钴纳米颗粒的单一飞秒激光脉冲激发
Single femtosecond laser pulse excitation of individual cobalt nanoparticles
论文作者
论文摘要
激光诱导的在纳米级的磁性操纵是一个快速增长的研究主题,具有用于旋转技术的应用。在这项工作中,我们解决了散射横截面,热效应以及激光通量对单个飞秒激光脉冲激发的单个磁性纳米颗粒的磁,结构和化学稳定性的作用。我们发现,从FS激光脉冲到纳米颗粒的能量转移受到雷利散射横截面的限制,瑞利散射横截面结合了支撑底物的光吸收和保护层的光吸收决定了纳米颗粒温度的升高。我们使用X射线光发射电子显微镜和扫描电子显微镜进行激发后,使用单个飞秒激光脉冲具有不同的强度和极化。与计算一致,我们发现纳米颗粒中磁化的确定性或随机逆转至薄膜中通常报道了超快消灭或全光性切换的强度。取而代之的是,在较高的静电率下,激光脉冲激发导致纳米颗粒与保护层的光化反应,从而导致磁性特性的不可逆变化。根据我们的发现,我们讨论了在孤立的纳米磁体中实现激光引起的切换所需的条件。
Laser-induced manipulation of magnetism at the nanoscale is a rapidly growing research topic with potential for applications in spintronics. In this work, we address the role of the scattering cross section, thermal effects, and laser fluence on the magnetic, structural, and chemical stability of individual magnetic nanoparticles excited by single femtosecond laser pulses. We find that the energy transfer from the fs laser pulse to the nanoparticles is limited by the Rayleigh scattering cross section, which in combination with the light absorption of the supporting substrate and protective layers determines the increase in the nanoparticle temperature. We investigate individual Co nanoparticles (8 to 20 nm in size) as a prototypical model system, using x-ray photoemission electron microscopy and scanning electron microscopy upon excitation with single femtosecond laser pulses of varying intensity and polarization. In agreement with calculations, we find no deterministic or stochastic reversal of the magnetization in the nanoparticles up to intensities where ultrafast demagnetization or all-optical switching is typically reported in thin films. Instead, at higher fluences, the laser pulse excitation leads to photo-chemical reactions of the nanoparticles with the protective layer, which results in an irreversible change in the magnetic properties. Based on our findings, we discuss the conditions required for achieving laser-induced switching in isolated nanomagnets.