Tundo Pietro, Aricò Fabio
Ca' Foscari University of Venice, Campus Scientifico, via Torino 155, 30172, Venezia Mestre, Italy.
Green Sciences for Sustainable Development Foundation, 1 Viale Garibaldi 31, 30173, Venice, Italy.
ChemSusChem. 2023 Dec 7;16(23):e202300748. doi: 10.1002/cssc.202300748. Epub 2023 Oct 5.
This review reports on the competition/collaboration among intertwined base-catalyzed acyl cleavage bimolecular mechanism (B 2)/base-catalyzed alkyl cleavage bimolecular mechanism (B 2) or the related acid catalyzed mechanisms A 2/A 2 and A 1 concerning Carbonates chemistry also in comparison with Esters reactivity. A consistent analysis of the experimental data so far available in the literature led to proposing a theoretical Model outlining the differences in energy profiles among the above-mentioned reaction mechanisms. The reactions involving Carbonates are so tightly interconnected that the formation of the final product is driven by a precise not interfering sequence of B 2-B 2 (or A 2-A 2) mechanisms. When entropic effect (in cyclisations) or an anchimeric effect (mustard carbonates, isosorbide methylation) are involved, the difference in Gibbs activation energy is reduced allowing chemical transformations that would normally require higher temperatures. In these cases (intramolecular alkylation, cyclisation reaction, and alkylation by mustard carbonates) only a catalytic amount of base is required as the leaving group CH OCOO decomposes restoring the base. As Green Chemistry is concerned, syntheses with much lower environmental impact are achieved with Carbonates when compared with the corresponding ones involving Chlorine chemistry.
本综述报道了在碳酸酯化学中,相互交织的碱催化酰基裂解双分子机理(B2)/碱催化烷基裂解双分子机理(B2)或相关的酸催化机理A2/A2和A1之间的竞争/协作情况,同时也与酯的反应活性进行了比较。对文献中目前可得的实验数据进行的连贯分析,促成了一个理论模型的提出,该模型概述了上述反应机理之间能量分布的差异。涉及碳酸酯的反应紧密相连,以至于最终产物的形成由B2 - B2(或A2 - A2)机理精确且互不干扰的序列驱动。当涉及熵效应(在环化反应中)或邻基参与效应(芥子碳酸酯、异山梨醇甲基化)时,吉布斯活化能的差异会减小,从而使通常需要更高温度的化学转化成为可能。在这些情况下(分子内烷基化、环化反应以及芥子碳酸酯的烷基化),由于离去基团CH₂OCOO分解会使碱得以恢复,所以只需要催化量的碱。就绿色化学而言,与涉及氯化学的相应合成相比,使用碳酸酯可实现对环境影响小得多的合成。