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Hydrolysis of Imidazole-2-ylidenes

机译:咪唑-2-亚胺的水解

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The direct reaction of an imidazole-2-ylidene in a predominantly aqueous environment [about 0.1 M solution in a H_2O (>60%)/THF solvent system] was investigated for the first time. The reaction yielded a stable solution of the corresponding imidazolium-hydroxide of pH 13, which is in agreement with results from an ab initio molecular dynamics simulation. In contrast, hydrolysis of the carbene in a mainly aprotic environment (>80% THF) gives a hydrogen-bridged carbene-water complex which could be detected by NMR and IR spectroscopies for the first time. This complex converts slowly to two isomeric ring opened products and is at higher water concentration in dynamic equilibrium with the imidazolium hydroxide. A computational mechanistic study of the carbene hydrolysis with a gradually increasing number of water molecules revealed that the imidazolium-hydroxide structure can only be optimized with three or more water molecules as reactants, and with the increasing number of water molecules its stability is increasing with respect to the carbene-water complex In agreement with the experimental results, these findings point out that solvent stabilization and basicity of the hydroxide ion plays a crucial role in the reaction. With increasing number of water molecules the barriers connecting the reaction intermediates are getting smaller, and the ring opened hydrolysis products can be derived from imidazolium-hydroxide type intermediates. Computational studies on the hydrolysis of a nonaromatic imidazolidine-2-ylidene analogue clearly indicated the analogous ring-opened product to be by 10-12 kcal/mol more stable than the appropriate ion pair and the carbene-water complex, in agreement with the known aromatic stabilization of imidazol-2-ylidenes. Accordingly, these molecules hydrolyze with exclusive formation of the ring-opened product.
机译:首次研究了咪唑-2-亚烷基在主要水环境中的直接反应[在H_2O(> 60%)/ THF溶剂体系中约0.1 M的溶液]。该反应产生了pH 13的相应的咪唑-氢氧化物的稳定溶液,这与从头算分子动力学模拟的结果一致。相反,在主要非质子环境(> 80%THF)中卡宾的水解产生了氢桥联的卡宾-水络合物,该化合物可通过NMR和IR光谱首次检测到。该配合物缓慢地转变成两个异构的开环产物,并且在较高的水浓度下与氢氧化咪唑动态平衡。对卡宾水解随着水分子数量逐渐增加的计算机理研究表明,咪唑鎓氢氧化物结构只能以三个或更多水分子作为反应物来优化,并且随着水分子数量的增加,其稳定性相对于向卡宾-水络合物的还原与实验结果一致,这些发现指出,溶剂的稳定性和氢氧根离子的碱性在反应中起着至关重要的作用。随着水分子数目的增加,连接反应中间体的壁垒变得越来越小,并且开环水解产物可以衍生自咪唑-氢氧化物型中间体。对非芳香族咪唑烷-2-亚基类似物水解的计算研究清楚地表明,与适当的离子对和卡宾-水络合物相比,类似的开环产物比合适的离子对和卡宾-水络合物稳定10-12 kcal / mol。咪唑-2-亚烷基的芳族稳定。因此,这些分子水解而仅形成开环产物。

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  • 来源
    《Journal of the American Chemical Society》 |2011年第4期|p.780-789|共10页
  • 作者单位

    Department of Inorganic and Analytical Chemistry Budapest University of Technology and Economics, Szt. Gellert ter 4., Budapest, H-1111 Hungary,Materials Structure and Modeling Research Group of the Hungarian Academy of Sciences, Budapest University of Technology and Economics, Szt. Gellert ter 4., Budapest, H-1111 Hungary;

    Department of Inorganic and Analytical Chemistry Budapest University of Technology and Economics, Szt. Gellert ter 4., Budapest, H-1111 Hungary;

    Department of Inorganic and Analytical Chemistry Budapest University of Technology and Economics, Szt. Gellert ter 4., Budapest, H-1111 Hungary;

    Institut fuer Anorganische Chemie, Universitaet Stuttgart, Pfaffenwaldring 55, 70550 Stuttgart, Germany;

    Institut fuer Anorganische Chemie, Universitaet Stuttgart, Pfaffenwaldring 55, 70550 Stuttgart, Germany;

    Department of Inorganic and Analytical Chemistry Budapest University of Technology and Economics, Szt. Gellert ter 4., Budapest, H-1111 Hungary,Materials Structure and Modeling Research Group of the Hungarian Academy of Sciences, Budapest University of Technology and Economics, Szt. Gellert ter 4., Budapest, H-1111 Hungary;

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  • 正文语种 eng
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  • 入库时间 2022-08-18 03:14:05

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