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尿素衍生物热分解的理论研究。

Theoretical Study of the Thermal Decomposition of Urea Derivatives.

机构信息

Université de Lorraine, CNRS, LRGP, F-54000 Nancy, France.

出版信息

J Phys Chem A. 2022 Sep 15;126(36):6264-6277. doi: 10.1021/acs.jpca.2c04291. Epub 2022 Sep 7.

DOI:10.1021/acs.jpca.2c04291
PMID:36069061
Abstract

An extensive theoretical study of the thermal decomposition of alkyl- and phenylureas, which are widely used in the pesticides, pharmaceuticals, and materials industries, has been carried out using electronic structure calculations and reaction rate theories. Enthalpies of formation and bond dissociation energies (BDE) of 11 urea derivatives have been calculated using different levels of theory (CBS-QB3, CCSD(T)/CBS//M06-2X/6-311++G(3df,2pd), and CBS-QM062X) according to the size of the system. Potential energy surfaces for the unimolecular decomposition pathways of these urea derivatives were also systematically computed for the first time. Several pericyclic reactions can be envisaged, as a function of the size and the nature of the N substituents, and all of these pathways were explored. Our calculations show that these compounds are solely decomposed by four-center pericyclic reactions, yielding substituted isocyanates and amines, and that initial bond fissions are not competitive. Based on the set of urea derivatives studied, a new reaction rate rule for their thermal decomposition was defined and involves the nature of the transferred H atom (primary or secondary/alkyl or benzyl) and the nature of the N-atom acceptor (primary, secondary, or tertiary). This new reaction rate rule allows us to determine the product branching ratios in the thermal decomposition of a given urea derivative and its total rate of decomposition. Applications on urea derivatives used in the chemical industry are presented and illustrate the usefulness of this new rate rule that allows to predict the previously unknown thermal decomposition kinetics of a large number of these compounds.

摘要

已使用电子结构计算和反应速率理论对广泛用于农药、制药和材料工业的烷基和苯基脲的热分解进行了广泛的理论研究。根据系统的大小,使用不同的理论(CBS-QB3、CCSD(T)/CBS//M06-2X/6-311++G(3df,2pd)和 CBS-QM062X)计算了 11 种脲衍生物的生成焓和键离解能(BDE)。还首次系统地计算了这些脲衍生物的单分子分解途径的势能面。可以设想几种周环反应,这取决于 N 取代基的大小和性质,并且探索了所有这些途径。我们的计算表明,这些化合物仅通过四中心周环反应分解,生成取代异氰酸酯和胺,并且初始键断裂不是竞争性的。基于所研究的脲衍生物组,定义了它们热分解的新反应速率规则,该规则涉及转移的 H 原子(伯或仲/烷基或苄基)和 N 原子受体(伯、仲或叔)的性质。该新反应速率规则允许我们确定给定脲衍生物的热分解中的产物分支比及其总分解速率。介绍了在化学工业中使用的脲衍生物的应用,说明了该新速率规则的有用性,该规则允许预测这些化合物中大量未知的热分解动力学。

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