论文标题
功能性纳米材料的电子断层扫描
Electron tomography for functional nanomaterials
论文作者
论文摘要
现代纳米材料包含跨越所有三个维度的复杂性 - 从多仪半导体到清洁能量纳米催化剂到复杂的块共聚物。对于纳米级表征,观察和量化三维(3D)结构的长期目标 - 不仅是表面,而且整个内部体积和化学排列。电子断层扫描估计纳米材料的完整3D结构,这些结构来自一系列在许多视角上采取的一系列二维投影。自1968年首次引入以来,电子断层扫描在分辨率,剂量和化学敏感性方面取得了长足的进步。特别是,通过提供可量化的内部形态和元件的光谱检测,扫描透射电子显微镜层析成像大大增强了3D纳米材料的研究。结合了计算重建算法和3D可视化工具的最新创新,科学家可以交互解剖体积表示并提取标本的有意义的统计数据。本文重点介绍了电子断层扫描的成熟场以及在纳米和亚纳米长度尺度上利用3D结构,化学和功能成像的扩大科学应用。
Modern nanomaterials contain complexity that spans all three dimensions - from multigate semiconductors to clean energy nanocatalysts to complex block copolymers. For nanoscale characterization, it has been a long-standing goal to observe and quantify the three-dimensional (3D) structure - not just surfaces, but the entire internal volume and the chemical arrangement. Electron tomography estimates the complete 3D structure of nanomaterials from a series of two-dimensional projections taken across many viewing angles. Since its first introduction in 1968, electron tomography has progressed substantially in resolution, dose, and chemical sensitivity. In particular, scanning transmission electron microscope tomography has greatly enhanced the study of 3D nanomaterials by providing quantifiable internal morphology and spectroscopic detection of elements. Combined with recent innovations in computational reconstruction algorithms and 3D visualization tools, scientists can interactively dissect volumetric representations and extract meaningful statistics of specimens. This article highlights the maturing field of electron tomography and the widening scientific applications that utilize 3D structural, chemical, and functional imaging at the nanometer and subnanometer length scales.