School of Chemistry and EaStCHEM, University of St. Andrews, North Haugh, St. Andrews KY16 9ST, UK.
J Am Chem Soc. 2010 Nov 10;132(44):15651-60. doi: 10.1021/ja105347q.
High-resolution (19)F magic angle spinning (MAS) NMR spectroscopy is used to study disorder and bonding in a crystalline solid. (19)F MAS NMR reveals four distinct F sites in a 50% fluorine-substituted deuterated hydrous magnesium silicate (clinohumite, 4Mg(2)SiO(4)·Mg(OD(1-x)F(x))(2) with x = 0.5), indicating extensive structural disorder. The four (19)F peaks can be assigned using density functional theory (DFT) calculations of NMR parameters for a number of structural models with a range of possible local F environments generated by F(-)/OH(-) substitution. These assignments are supported by two-dimensional (19)F double-quantum MAS NMR experiments that correlate F sites based on either spatial proximity (via dipolar couplings) or through-bond connectivity (via scalar, or J, couplings). The observation of (19)F-(19)F J couplings is unexpected as the fluorines coordinate Mg atoms and the Mg-F interaction is normally considered to be ionic in character (i.e., there is no formal F-Mg-F covalent bonding arrangement). However, DFT calculations predict significant (19)F-(19)F J couplings, and these are in good agreement with the splittings observed in a (19)F J-resolved MAS NMR experiment. The existence of these J couplings is discussed in relation to both the nature of bonding in the solid state and the occurrence of so-called "through-space" (19)F-(19)F J couplings in solution. Finally, we note that we have found similar structural disorder and spin-spin interactions in both synthetic and naturally occurring clinohumite samples.
高分辨率 (19)F 魔角旋转 (MAS) NMR 光谱用于研究晶态固体中的无序和键合。(19)F MAS NMR 在 50%氟取代的氘代含水镁硅酸盐(斜顽辉石,4Mg(2)SiO(4)·Mg(OD(1-x)F(x))(2),其中 x = 0.5)中揭示了四个不同的 F 位点,表明存在广泛的结构无序。四个 (19)F 峰可以使用 NMR 参数的密度泛函理论 (DFT) 计算来分配,这些参数是通过一系列可能的局部 F 环境的结构模型生成的,这些模型是通过 F(-)/OH(-)取代产生的。这些分配得到二维 (19)F 双量子 MAS NMR 实验的支持,该实验基于空间邻近性(通过偶极耦合)或通过键连接性(通过标量或 J 耦合)来关联 F 位点。观察到 (19)F-(19)F J 耦合是出乎意料的,因为氟原子与 Mg 原子配位,并且 Mg-F 相互作用通常被认为具有离子性质(即,没有正式的 F-Mg-F 共价键合排列)。然而,DFT 计算预测存在显著的 (19)F-(19)F J 耦合,并且这些耦合与在 (19)F J 分辨 MAS NMR 实验中观察到的分裂非常吻合。讨论了这些 J 耦合的存在与固态中键合的性质以及溶液中所谓的“穿越空间”(19)F-(19)F J 耦合的发生有关。最后,我们注意到,我们在合成和天然斜顽辉石样品中都发现了类似的结构无序和自旋-自旋相互作用。