Siebert Max, Sure Rebecca, Deglmann Peter, Closs Anna C, Lucas Frederic, Trapp Oliver
Department Chemie, Ludwig-Maximilians-Universität München, Butenandtstraße 5-13, 81377 München, Germany.
Advanced Materials & Systems Research, BASF SE, Carl-Bosch-Straße 38, 67056 Ludwigshafen, Germany.
J Org Chem. 2020 Jul 2;85(13):8553-8562. doi: 10.1021/acs.joc.0c00944. Epub 2020 Jun 22.
The acetate-initiated aliphatic isocyanate trimerization to isocyanurate was investigated by state-of-the-art analytical and computational methods. Although the common cyclotrimerization mechanism assumes the consecutive addition of three equivalents of isocyanate to acetate prior to product formation, we found that the underlying mechanism is more complex. In this work, we demonstrate that the product, in fact, is formed via the connection of two unexpected catalytic cycles, with acetate being only the precatalyst. The initial discovery of a precatalyst activation by quantum chemical computations and the resulting first catalysis cycle were corroborated by mass spectrometric and NMR experiments, thereby additionally revealing a catalyst migration to the second catalytic cycle. These results were further confirmed by computations, completing the full mechanistic understanding of this catalytic system. Identification of a side product with undesired properties for final coating applications allows for process optimization in the chemical industry.
采用最先进的分析和计算方法研究了乙酸盐引发的脂肪族异氰酸酯三聚生成异氰脲酸酯的反应。尽管常见的环三聚反应机理假定在产物形成之前,三当量的异氰酸酯连续加成到乙酸盐上,但我们发现其潜在机理更为复杂。在这项工作中,我们证明事实上产物是通过两个意想不到的催化循环的连接形成的,乙酸盐仅仅是预催化剂。通过量子化学计算对预催化剂活化的初步发现以及由此产生的第一个催化循环,得到了质谱和核磁共振实验的证实,从而进一步揭示了催化剂向第二个催化循环的迁移。这些结果通过计算得到了进一步证实,从而完成了对该催化体系完整的机理理解。鉴定出一种对最终涂料应用具有不良性能的副产物,有助于化学工业的工艺优化。