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Fully Automated Quantum‐Chemistry‐Based Computation of Spin–Spin‐Coupled Nuclear Magnetic Resonance Spectra

机译:基于全自动量子化学的自旋-自旋耦合核磁共振谱计算

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摘要

We present a composite procedure for the quantum‐chemical computation of spin–spin‐coupled 1H NMR spectra for general, flexible molecules in solution that is based on four main steps, namely conformer/rotamer ensemble (CRE) generation by the fast tight‐binding method GFN‐xTB and a newly developed search algorithm, computation of the relative free energies and NMR parameters, and solving the spin Hamiltonian. In this way the NMR‐specific nuclear permutation problem is solved, and the correct spin symmetries are obtained. Energies, shielding constants, and spin–spin couplings are computed at state‐of‐the‐art DFT levels with continuum solvation. A few (in)organic and transition‐metal complexes are presented, and very good, unprecedented agreement between the theoretical and experimental spectra was achieved. The approach is routinely applicable to systems with up to 100–150 atoms and may open new avenues for the detailed (conformational) structure elucidation of, for example, natural products or drug molecules.
机译:我们提出了一种用于溶液中一般柔性分子的自旋-自旋耦合的 1 H NMR光谱的量子化学计算的合成程序,该程序基于四个主要步骤,即构象体/旋转体集成(CRE) )是通过快速紧束缚方法GFN-xTB和新开发的搜索算法生成的,计算了相对自由能和NMR参数,并求解了自旋哈密顿量。这样,就可以解决NMR特定的核置换问题,并获得正确的自旋对称性。能量,屏蔽常数和自旋-自旋耦合在最先进的DFT水平下通过连续溶剂化计算。介绍了一些(无机)有机和过渡金属配合物,并且在理论和实验光谱之间达成了非常好的,前所未有的协议。该方法通常适用于原子数不超过100-150的系统,并且可能为阐明(天然的)天然产物或药物分子的详细(构象)结构开辟新途径。

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