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DFT 计算共轭亚麻酸、十六碳三烯性信息素及其模型三烯化合物的几何异构体的 H NMR 化学位移:溶液中的结构和 NMR 分配的修订。

DFT Calculations of H NMR Chemical Shifts of Geometric Isomers of Conjugated Linolenic Acids, Hexadecatrienyl Pheromones, and Model Triene-Containing Compounds: Structures in Solution and Revision of NMR Assignments.

机构信息

Section of Organic Chemistry and Biochemistry, Department of Chemistry, University of Ioannina, GR-45110 Ioannina, Greece.

出版信息

Molecules. 2021 Jun 7;26(11):3477. doi: 10.3390/molecules26113477.

DOI:10.3390/molecules26113477
PMID:34200468
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC8201138/
Abstract

A DFT study of the H NMR chemical shifts, δ(H), of geometric isomers of 18:3 conjugated linolenic acids (CLnAs), hexadecatrienyl pheromones, and model triene-containing compounds is presented, using standard functionals (B3LYP and PBE0) as well as corrections for dispersion interactions (B3LYP-D3, APFD, M06-2X and ωB97XD). The results are compared with literature experimental δ(H) data in solution. The closely spaced "inside" olefinic protons are significantly more deshielded due to short-range through-space HH steric interactions and appear close to or even beyond δ-values of aromatic systems. Several regularities of the computational δ(H) of the olefinic protons of the conjugated double bonds are reproduced very accurately for the lowest-energy DFT-optimized single conformer for all functionals used and are in very good agreement with experimental δ(H) in solution. Examples are provided of literature studies in which experimental resonance assignments deviate significantly from DFT predictions and, thus, should be revised. We conclude that DFT calculations of H chemical shifts of trienyl compounds are powerful tools (i) for the accurate prediction of δ(H) even with less demanding functionals and basis sets; (ii) for the unequivocal identification of geometric isomerism of conjugated trienyl systems that occur in nature; (iii) for tackling complex problems of experimental resonance assignments due to extensive signal overlap; and (iv) for structure elucidation in solution.

摘要

采用标准函数(B3LYP 和 PBE0)以及色散相互作用修正(B3LYP-D3、APFD、M06-2X 和 ωB97XD),对 18:3 共轭亚油酸(CLnAs)、十六碳三烯信息素和模型含三烯化合物的几何异构体的 1H NMR 化学位移(δ(H))进行了密度泛函理论(DFT)研究,将结果与溶液中的文献实验 δ(H)数据进行了比较。由于短程 HH 空间位阻相互作用,紧密间隔的“内部”烯丙质子的屏蔽作用明显减弱,其 δ 值接近甚至超过芳香系统的值。使用所有功能,对于最低能量的 DFT 优化单构象,准确再现了共轭双键烯丙质子的计算 δ(H)的几个规律性,并且与溶液中的实验 δ(H)非常吻合。提供了一些文献研究的示例,其中实验共振分配明显偏离 DFT 预测,因此应进行修订。我们得出结论,三烯化合物 H 化学位移的 DFT 计算是一种强大的工具:(i)即使使用要求较低的功能和基组,也可以准确预测 δ(H);(ii)用于鉴定在自然界中存在的共轭三烯系统的几何异构体;(iii)用于解决由于信号重叠广泛而导致的复杂实验共振分配问题;以及(iv)用于溶液中的结构阐明。

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