Lang Peng, Song Xiaowei, Ji Boyu, Tao Haiyan, Dou Yinping, Gao Xun, Hao Zuoqiang, Lin Jingquan
Opt Express. 2019 Mar 4;27(5):6878-6891. doi: 10.1364/OE.27.006878.
Spatial-resolved photoelectron spectra have been observed from plasmonic metallic nanostructure and flat metal surface by a combination of time-of-flight photoemission electron microscope and femtosecond laser oscillator. The photoemission's main contribution is at localized 'hot spots,' where the plasmonic effect dominates and multiphoton photoemission is confirmed as the responsible mechanism for emission in both samples. Photoelectron spectra from hot spots exponentially decay in high energy regimes, smearing out the Fermi edge in Au flat surface. This phenomenon is explained by the emergence of above threshold photoemission that is induced by plasmonic effect; other competing mechanisms are ruled out. It is the first time that we have observed the emergence of high kinetic energy photoelectron in weak field region around 'hot spot.' We attribute the emergence of high kinetic energy photoelectron to the drifting of the liberated electron from plasmonic hot spot and driven by the gradient of plasmonic field.
通过飞行时间光发射电子显微镜和飞秒激光振荡器的结合,已从等离子体金属纳米结构和平坦金属表面观察到空间分辨光电子能谱。光发射的主要贡献出现在局部“热点”处,在这些地方等离子体效应占主导,并且多光子光发射被确认为两个样品中发射的负责机制。来自热点的光电子能谱在高能区呈指数衰减,使金平面表面的费米边缘模糊。这种现象可由等离子体效应诱导的阈上光发射的出现来解释;排除了其他竞争机制。这是我们首次在“热点”周围的弱场区域观察到高动能光电子的出现。我们将高动能光电子的出现归因于从等离子体热点释放的电子的漂移,并由等离子体场的梯度驱动。