Tobisch Sven
School of Chemistry, University of St Andrews, Purdie Building, North Haugh, St Andrews, UK KY16 9ST.
Dalton Trans. 2015 Jul 21;44(27):12169-79. doi: 10.1039/c5dt00121h. Epub 2015 Mar 24.
A comprehensive computational examination of alternatively plausible mechanistic pathways for the intramolecular hydroamination (HA) of aminoalkenes utilising a recently reported novel phenylene-diamine aluminium amido compound is presented. On the one hand, a proton-assisted concerted N-C/C-H bond-forming pathway to afford the cycloamine in a single step can be invoked, and, on the other, a stepwise σ-insertive pathway that involves a relatively fast, reversible migratory olefin 1,2-insertion step linked to a less rapid, irreversible Al-C alkyl bond protonolysis. The present study, which employs a sophisticated and reliable computational methodology, supports the prevailing mechanism to be a stepwise σ-insertive pathway. The predicted effective barrier for turnover-limiting aminolysis compares favourably with reported catalytic performance data. Non-competitive kinetic demands militates against the operation of the concerted proton-assisted pathway, which describes N-C bond-forming ring closure triggered by concomitant amino proton delivery at the C[double bond, length as m-dash]C linkage evolving through a six-centre transition state structure. The valuable insights into mechanistic intricacies of aluminium-mediated intramolecular HA reported herein will help guide the rational design of group 13 metal-based HA catalysts.
本文介绍了一项全面的计算研究,该研究利用最近报道的新型亚苯基二胺铝酰胺化合物,对氨基烯烃分子内氢胺化(HA)的多种可能机理途径进行了探讨。一方面,可以提出一种质子辅助的协同N-C/C-H键形成途径,一步生成环胺;另一方面,存在一种逐步的σ插入途径,该途径涉及相对快速、可逆的迁移烯烃1,2-插入步骤,与较慢、不可逆的Al-C烷基键质子解相关联。本研究采用了复杂且可靠的计算方法,支持主要机理为逐步的σ插入途径。预测的限速氨解有效势垒与报道的催化性能数据相比具有优势。非竞争性动力学要求不利于协同质子辅助途径的运行,该途径描述了由在C=C键处伴随氨基质子传递引发的N-C键形成闭环反应,通过六中心过渡态结构进行。本文报道的关于铝介导的分子内HA机理复杂性的宝贵见解将有助于指导基于第13族金属的HA催化剂的合理设计。