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首页> 外文期刊>The journal of physical chemistry, C. Nanomaterials and interfaces >Multinuclear Magnetic Resonance Crystal log raphic Structure Refinement and Cross-Validation Using Experimental and Computed Electric Field Gradients: Application to Na2AI2B2O7
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Multinuclear Magnetic Resonance Crystal log raphic Structure Refinement and Cross-Validation Using Experimental and Computed Electric Field Gradients: Application to Na2AI2B2O7

机译:使用实验和计算电场梯度的多核磁共振晶体对数结构的精细化和交叉验证:在Na2Al2B2O7中的应用

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摘要

An NMR crystallographic method is presented for the refinement of structures using electric field gradient (EFG) tensors measured using solid-state NMR spectroscopy and those calculated using the projector-augmented wave DFT method. As the calculated EFG data often overestimate the experimental data, the former are scaled to yield optimal agreement for a test set of compounds having highly accurate NMR data. A least-squares optimization procedure is then performed to minimize the difference between the experimental and the scaled calculated EFG tensors. This procedure yields high-quality crystal structures comparable to those obtained from pure DFT energy minimizations, as judged by their rmsd from single-crystal X-ray structures, and is based on experimental observables. Further improvement is obtained by simultaneously refining the structures against the experimental EFG tensor parameters and optimizing the lattice energy with DFT. We use this hybrid experimental-theoretical approach to refine the crystal structure of Na2Al2B2O7, a member of an important family of nonlinear optical materials, which has been the focus of study due to its tendency to form stacking faults. The resulting structures are subjected to a systematic cross-validation process using experimental ~(23)Na, ~(11)B, ~(17)O, and 2'A1 EFG and chemical shift data, thereby demonstrating the validity of our strategy. This approach may be useful for the refinement of crystal structures of intrinsically polycrystalline materials for which typically only low quality structures are obtainable through traditional diffraction-based methods.
机译:提出了一种NMR晶体学方法,用于通过使用电场NMR(EFG)张量来细化结构,该张量是通过固态NMR光谱测量的,而那些是使用投影仪增强波DFT方法计算的。由于计算出的EFG数据经常高估了实验数据,因此对前者进行缩放以产生具有高度准确NMR数据的化合物测试集的最佳一致性。然后执行最小二乘优化程序以最小化实验和按比例计算的EFG张量之间的差异。根据单晶X射线结构的均方根值,该程序可产生与纯DFT能量最小化可比的高质量晶体结构,并且基于实验可观察到的结果。通过同时根据实验EFG张量参数细化结构并使用DFT优化晶格能量,可以获得进一步的改进。我们使用这种混合的实验理论方法来改进Na2Al2B2O7的晶体结构,Na2Al2B2O7是一种重要的非线性光学材料家族,由于其容易形成叠层缺陷,因此一直是研究的重点。使用实验〜(23)Na,〜(11)B,〜(17)O和2'A1 EFG和化学位移数据对所得结构进行系统的交叉验证,从而证明了我们策略的有效性。这种方法对于细化本征多晶材料的晶体结构可能是有用的,为此,通常通过传统的基于衍射的方法只能获得低质量的结构。

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