论文标题
超快电子显微镜成像的光电电子气体的瞬态镜头
Transient lensing from a photoemitted electron gas imaged by ultrafast electron microscopy
论文作者
论文摘要
在(量子)科学和技术的不同领域中,了解和控制超快非平衡荷载体动力学至关重要。在这里,我们通过真空中的铜表面通过两光子光发射创建了三维热电子气体。我们采用超快电子显微镜在Picsecond-Nansecond Time尺度上录制后续电子动力学的电影。迅速发生库仑爆炸后,随后的动力学的特征是电子气体的快速扁平形状转化,以及物镜镜头磁场内的异常周期性和长期寿命的电子转基因振荡。在这种制度中,振荡电子的集体行为会导致瞬态,平均镜头镜头效应和图像中明显的变形。我们得出了电子气体镜头的时间依赖性焦距的分析表达,并执行数值电子动力学和探针图像模拟,以确定库仑自场和图像电荷的作用。这项工作为直接可视化二维电子气体材料内的转基因振荡以及阐明电子/等离子体动力学以及可能受益于高亮度电子和X射线源的发展的属性铺平了道路。
Understanding and controlling ultrafast non-equilibrium charge carrier dynamics is of fundamental importance in diverse fields of (quantum) science and technology. Here, we create a three-dimensional hot electron gas through two-photon photoemission from a copper surface in vacuum. We employ an ultrafast electron microscope to record movies of the subsequent electron dynamics on the picosecond-nanosecond time scale. After a prompt Coulomb explosion, the subsequent dynamics is characterized by a rapid oblate-to-prolate shape transformation of the electron gas, and exceptionally periodic and long-lived electron cyclotron oscillations inside the magnetic field of the objective lens. In this regime, the collective behavior of the oscillating electrons causes a transient, mean-field lensing effect and pronounced distortions in the images. We derive an analytical expression for the time-dependent focal length of the electron-gas lens, and perform numerical electron dynamics and probe image simulations to determine the role of Coulomb self-fields and image charges. This work paves the way for the direct visualization of cyclotron oscillations inside two-dimensional electron-gas materials and the elucidation of electron/plasma dynamics and properties that could benefit the development of high-brightness electron and X-ray sources.