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硫代甲醛S-亚甲基化物和硫代丙酮S-亚甲基化物:结构与环加成反应活性的从头算分子轨道研究

Thioformaldehyde S-methylide and thioacetone S-methylide: an ab initio MO study of structure and cycloaddition reactivity.

作者信息

Sustmann Reiner, Sicking Willi, Huisgen Rolf

机构信息

Institut für Organische Chemie, Universität Essen Universitätsstrasse 5, 45117 Essen, Germany.

出版信息

Chemistry. 2003 May 23;9(10):2245-55. doi: 10.1002/chem.200204658.

DOI:10.1002/chem.200204658
PMID:12772299
Abstract

The mechanisms of cycloaddition of thioformaldehyde S-methylide and thioacetone S-methylide, as models for an alkyl-substituted ylide, to thioformaldehyde and thioacetone, as well as to ethene as a model for a C=C double bond have been studied by ab initio calculations. Restricted and unrestricted B3LYP/6-31G* calculations were performed for the geometries of ground states, transition structures, and intermediates. Although basis sets with more polarization functions were tested, the 6-31G* basis set was applied throughout. Single-point CASPT2 calculations are reported for analysis of the unsubstituted system. The stabilities of structures with high biradical character seem to be overestimated by DFT methods in comparison to CASPT2. The general trends of the results are independent of the level of theory. Thioformaldehyde adds to thioformaldehyde S-methylide without activation energy, and the activation energies for two-step biradical pathways to 1,3-dithiolane are low. C,S biradicals are more stable than C,C biradicals. The two-step cycloaddition is not competitive with the concerted cycloaddition. Methyl substitution in the 1,3-dipole and the dipolarophile does not change the mechanistic relationships. TSs for the concerted formation of the regioisomeric cycloadducts of thioacetone Smethylide and thioacetone were located. Concerted addition remains the preferred reaction. The reactivity of the C=S double bond is high relative to that of the C=C double bond.

摘要

作为烷基取代叶立德模型的硫甲醛S - 亚甲基化物和硫代丙酮S - 亚甲基化物,与作为硫甲醛和硫代丙酮模型的底物,以及与作为C = C双键模型的乙烯之间的环加成机理已通过从头算进行了研究。对基态、过渡结构和中间体的几何结构进行了受限和非受限的B3LYP/6 - 31G计算。尽管测试了具有更多极化函数的基组,但整个过程都应用了6 - 31G基组。报告了用于分析未取代体系的单点CASPT2计算。与CASPT2相比,具有高双自由基特征的结构的稳定性似乎被DFT方法高估了。结果的总体趋势与理论水平无关。硫甲醛加成到硫甲醛S - 亚甲基化物上没有活化能,两步双自由基途径生成1,3 - 二硫戊环的活化能较低。C,S双自由基比C,C双自由基更稳定。两步环加成与协同环加成不具有竞争性。1,3 - 偶极体和偶极亲合体中的甲基取代不会改变机理关系。确定了硫代丙酮S - 亚甲基化物和硫代丙酮区域异构体环加成产物协同形成的过渡态。协同加成仍然是首选反应。相对于C = C双键,C = S双键的反应活性较高。

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