Measurement of heteronuclear bond distances in polycrystalline solids by solid-state NMR techniques
Measurement of heteronuclear bond distances in polycrystalline solids by solid-state NMR techniques
复制标题
通过固态核磁共振技术测量多晶固体中的异核键距
DOI:
10.1021/ja00248a006
复制
发表时间:
1987
影响因子:
15
通讯作者:
R. Griffin
中科院分区:
文献类型:
--
作者:
James E. Roberts;G. Harbison;M. Munowitz;J. Herzfeld;R. Griffin
High resolution dipolar/chemical shift NMR experiments for solids are critically reviewed and used to measure l5N-* H bond distances in a series of compounds, many of which have also been studied by neutron diffraction. The results demonstrate that when recorded carefully, with attention paid to the experimental procedures described, two-dimensional dipolar/chemical shift spectra can yield bond distances accurate to within 0.005 Á and mutual orientations of dipolar and chemical shift tensors accurateto within 3. A comparison of the NMR distances with similar data from neutron diffraction experiments shows the NMR distances to be uniformly~ 0.035 Á longer, a result that is consistent with some vibrational averaging of the 15N-'H dipolar interaction. Collectively, the experimental data and procedures described here demonstrate for the first time that high resolution dipolar/chemical shift NMR experiments are a viable method for locating protons in polycrystalline or amorphous solids. Previously, such determinations have been possible only with single crystal neutron diffraction techniques.Magnetic dipolar fields produced by nuclei figure prominently in almost all solid-state NMR experiments designed for spin f 2 systems, where they create both obstacles and opportunities for high-resolution spectroscopy. On the one hand, the spread of resonant frequencies that results from theexistence of relatively strong anisotropic magnetic fields in the sample inevitably broadens, and sometimes obscures, the response of all the nuclei within; on the other hand, a spectrum obtained in the presence of such a local field is rich with details of molecular structure,