Brouwer Darren H
Steacie Institute for Molecular Science, National Research Council of Canada, 100 Sussex Drive, Ottawa, Ont., Canada.
J Magn Reson. 2008 Sep;194(1):136-46. doi: 10.1016/j.jmr.2008.06.020. Epub 2008 Jul 2.
A strategy for performing crystal structure refinements with NMR chemical shift tensors is described in detail and implemented for the zeolite silica-ZSM-12 (framework type code MTW). The 29Si chemical shift tensors were determined from a slow magic-angle spinning spectrum obtained at an ultrahigh magnetic field of 21.1T. The Si and O atomic coordinate parameters were optimized to give the best agreement between experimentally measured and ab initio calculated principal components of the 29Si chemical shift tensors, with the closest Si-O, O-O, and Si-Si distances restrained to correspond with the distributions of the distances found in a set of single-crystal X-ray diffraction (XRD) structures of high-silica zeolites. An improved structure for the silica-ZSM-12 zeolite, compared to a prior structure derived from powder XRD data, is obtained in which the agreement between the experimental and calculated 29Si chemical shift tensors is dramatically improved, the Si-O, O-O, and Si-Si distances correspond to the expected distributions, while the calculated powder XRD pattern remains in good agreement with the experimental powder XRD data. It is anticipated that this "NMR crystallography" structure refinement strategy will be an important tool for the accurate structure determination of materials that are difficult to fully characterize by traditional diffraction methods.
详细描述了一种利用核磁共振化学位移张量进行晶体结构精修的策略,并将其应用于沸石硅-ZSM-12(骨架类型代码MTW)。29Si化学位移张量由在21.1T超高磁场下获得的慢魔角旋转光谱确定。优化Si和O原子坐标参数,以使实验测量的和从头计算的29Si化学位移张量主成分之间达成最佳一致性,同时将最接近的Si-O、O-O和Si-Si距离限制为与一组高硅沸石单晶X射线衍射(XRD)结构中发现的距离分布相对应。与基于粉末XRD数据得到的先前结构相比,获得了一种硅-ZSM-12沸石的改进结构,其中实验和计算的29Si化学位移张量之间的一致性得到显著改善,Si-O、O-O和Si-Si距离符合预期分布,同时计算得到的粉末XRD图谱与实验粉末XRD数据保持良好一致。预计这种“核磁共振晶体学”结构精修策略将成为准确确定难以用传统衍射方法完全表征的材料结构的重要工具。