Department of Physics, University of Warwick, Coventry CV4 7AL, United Kingdom.
J Chem Phys. 2012 Feb 28;136(8):084503. doi: 10.1063/1.3684879.
We recently noted [R. K. Harris, P. Hodgkinson, V. Zorin, J.-N. Dumez, B. Elena, L. Emsley, E. Salager, and R. Stein, Magn. Reson. Chem. 48, S103 (2010)] anomalous shifts in apparent (1)H chemical shifts in experiments using (1)H homonuclear decoupling sequences to acquire high-resolution (1)H NMR spectra for organic solids under magic-angle spinning (MAS). Analogous effects were also observed in numerical simulations of model (13)C,(1)H spin systems under homonuclear decoupling and involving large (13)C,(1)H dipolar couplings. While the heteronuclear coupling is generally assumed to be efficiently suppressed by sample spinning at the magic angle, we show that under conditions typically used in solid-state NMR, there is a significant third-order cross-term from this coupling under the conditions of simultaneous MAS and homonuclear decoupling for spins directly bonded to (1)H. This term, which is of the order of 100 Hz under typical conditions, explains the anomalous behaviour observed on both (1)H and (13)C spins, including the fast dephasing observed in (13)C{(1)H} heteronuclear spin-echo experiments under (1)H homonuclear decoupling. Strategies for minimising the impact of this effect are also discussed.
我们最近注意到 [R. K. Harris、P. Hodgkinson、V. Zorin、J.-N. Dumez、B. Elena、L. Emsley、E. Salager 和 R. Stein,《磁共振化学》48,S103 (2010)],在使用 (1)H 同核去耦序列获取有机固体在魔角旋转 (MAS) 下的高分辨率 (1)H NMR 谱的实验中,表观 (1)H 化学位移出现异常偏移。在同核去耦和涉及大 (13)C,(1)H 偶合的模型 (13)C,(1)H 自旋系统的数值模拟中也观察到类似的效应。虽然异核偶合通常被认为在样品以魔角旋转时被有效地抑制,但我们表明,在固态 NMR 中通常使用的条件下,对于直接与 (1)H 键合的自旋,在同时 MAS 和同核去耦的条件下,存在来自该偶合的显著三阶交叉项。在典型条件下,该项约为 100 Hz,它解释了在 (1)H 和 (13)C 自旋上观察到的异常行为,包括在 (1)H 同核去耦下的 (13)C{(1)H}异核自旋回波实验中观察到的快速去相位。还讨论了最小化这种效应影响的策略。