Physical Biology Center for Ultrafast Science and Technology, Arthur Amos Noyes Laboratory of Chemical Physics, California Institute of Technology, Pasadena, CA 91125, USA.
Science. 2009 Oct 30;326(5953):708-12. doi: 10.1126/science.1179314.
Diffraction with focused electron probes is among the most powerful tools for the study of time-averaged nanoscale structures in condensed matter. Here, we report four-dimensional (4D) nanoscale diffraction, probing specific site dynamics with 10 orders of magnitude improvement in time resolution, in convergent-beam ultrafast electron microscopy (CB-UEM). As an application, we measured the change of diffraction intensities in laser-heated crystalline silicon as a function of time and fluence. The structural dynamics (change in 7.3 +/- 3.5 picoseconds), the temperatures (up to 366 kelvin), and the amplitudes of atomic vibrations (up to 0.084 angstroms) are determined for atoms strictly localized within the confined probe area (10 to 300 nanometers in diameter). We anticipate a broad range of applications for CB-UEM and its variants, especially in the studies of single particles and heterogeneous structures.
聚焦电子探针的衍射是研究凝聚态物质中时间平均纳米结构的最有力工具之一。在这里,我们报告了四维(4D)纳米尺度衍射,在会聚束超快电子显微镜(CB-UEM)中以时间分辨率提高 10 个数量级的方式探测特定位置的动力学。作为一个应用,我们测量了激光加热的结晶硅的衍射强度随时间和通量的变化。在严格限定于受限探针区域(直径为 10 至 300 纳米)内的原子中,确定了结构动力学(7.3 +/- 3.5 皮秒内的变化)、温度(高达 366 开尔文)和原子振动幅度(高达 0.084 埃)。我们预计 CB-UEM 及其变体将有广泛的应用,特别是在单个粒子和异质结构的研究中。