Ling Yan, Zhang Yong
Department of Chemistry and Biochemistry, University of Southern Mississippi, 118 College Drive No. 5043, Hattiesburg, Mississippi 39406, USA.
J Phys Chem A. 2009 May 21;113(20):5993-7. doi: 10.1021/jp9001324.
Recent developments in solid-state NMR techniques helped acquire high-resolution NMR spectra for solid systems with structural disorder. But the structural origin of the observed chemical shift nonequivalence in these systems has not been revealed. We report a quantum chemical investigation of the solid-state NMR spectrum in N,N-bis(diphenylphosphino)-N-((S)-alpha-methylbenzyl)amine, where eight nonequivalent (31)P NMR chemical shifts were resolved with a range of 13.0 ppm. Results from using different quantum chemical methods, computational algorithms, intermolecular effects, and structures indicate that for the disordered system, geometry optimization gives the best accord with experimental NMR chemical shifts, which has a theory-versus-experiment correlation R(2) = 0.949 and SD = 1.1 ppm, or R(2) = 0.994 and SD = 0.4 ppm when the average of two unassigned NMR shifts for each molecule is used. In addition, these calculations indicate that the experimental chemical shift nonequivalence in this system is mainly a consequence of the different geometries around the phosphorus atoms due to disordered environments. The experimental (31)P NMR chemical shifts are well correlated (R(2) = 0.981) with two conformation angles and one bond length, each associated with one of the three bonding interactions around the phosphorus atoms. These results will facilitate the use of quantum chemical techniques in structural characterization of disordered solids and elucidation of NMR properties.
固态核磁共振技术的最新进展有助于获取具有结构无序的固体系统的高分辨率核磁共振谱。但这些系统中观察到的化学位移不等效性的结构起源尚未揭示。我们报道了对N,N-双(二苯基膦基)-N-((S)-α-甲基苄基)胺固态核磁共振谱的量子化学研究,其中分辨出了八个不等效的³¹P核磁共振化学位移,范围为13.0 ppm。使用不同量子化学方法、计算算法、分子间效应和结构的结果表明,对于无序系统,几何优化与实验核磁共振化学位移的吻合度最佳,其理论与实验相关性R² = 0.949,标准差SD = 1.1 ppm;当使用每个分子两个未归属核磁共振位移的平均值时,R² = 0.994,标准差SD = 0.4 ppm。此外,这些计算表明,该系统中实验化学位移的不等效性主要是由于无序环境导致磷原子周围几何结构不同的结果。实验³¹P核磁共振化学位移与两个构象角和一个键长具有良好的相关性(R² = 0.981),每个构象角和键长与磷原子周围三种键合相互作用之一相关。这些结果将有助于在无序固体的结构表征和核磁共振性质的阐明中使用量子化学技术。