Université Lille 1 and Ecole Nationale Supérieure de Chimie de Lille, Cité Scientifique, 59655 Villeneuve d'Ascq, France.
Ultramicroscopy. 2012 Oct;121:42-60. doi: 10.1016/j.ultramic.2012.04.008. Epub 2012 May 19.
This systematic method allows the unambiguous identification of the extinction and diffraction symbols of a crystal by comparison of a few experimental Precession Electron Diffraction (PED) patterns with theoretical patterns drawn for all the extinction and diffraction symbols. The method requires the detection of the Laue class, of the kinematically forbidden reflections and of the shift and periodicity differences between the reflections located in the First-Order Laue Zone (FOLZ) with respect to the ones located in the Zero-Order Laue Zone (ZOLZ). The actual space group can be selected, among the possible space groups connected with each extinction symbol or diffraction symbol, from the identification of the point group. This point group is available from observation of the 2D symmetry of the ZOLZ on Convergent-Beam Electron Diffraction (CBED) patterns.
这种系统的方法通过将少数几个实验性的进动电子衍射 (PED) 图谱与针对所有消光和衍射符号绘制的理论图谱进行比较,能够明确识别晶体的消光和衍射符号。该方法需要检测劳厄类、运动学禁戒反射以及位于第一劳厄区 (FOLZ) 中的反射相对于位于零级劳厄区 (ZOLZ) 中的反射的位移和周期性差异。可以从 ZOLZ 的零阶劳厄区 (ZOLZ) 的二维对称结构的观察中,从可能与每个消光符号或衍射符号相关的点群中选择实际的空间群。该点群可通过观察零级劳厄区 (ZOLZ) 的二维对称结构在会聚束电子衍射 (CBED) 图谱上获得。