Yang Yinuo, Jiang Julong, Yu Haizhu, Shi Jing
Hefei National Laboratory for Physical Sciences at the Microscale, CAS Key Laboratory of Urban Pollutant Conversion, Anhui Province Key Laboratory of Biomass Clean Energy, iChEM, Department of Chemistry, University of Science and Technology of China, Hefei, 230026, Anhui, P.R. China.
Department of Chemistry and Centre for Atomic Engineering of Advanced Materials, Anhui University, Hefei, 230601, Anhui, P.R. China.
Chemistry. 2018 Jan 2;24(1):178-186. doi: 10.1002/chem.201704035. Epub 2017 Dec 4.
An azaborine-based phosphine-Pd catalyst was introduced by the Liu group to promote trans hydroboration of the C≡C triple bond of internal 1,3-enyne substrates. Despite the excellent yield and selectivity observed experimentally, the mechanism and the origin of this special trans selectivity remained unknown. Herein, a comprehensive theoretical investigation was performed to clarify these issues. Accordingly, two main mechanisms (inner- and outer-sphere) were proposed and examined. Different from the conventional inner-sphere mechanism, in which the transition metal is involved in H-B bond cleavage, this reaction follows an outer-sphere mechanism, in which Pd does not directly participate in H-B bond cleavage. More specifically, the favorable pathway followed a Tsuji-Trost type reaction, in which the H-B bond was weakened by the formation of a four-coordinate boron intermediate (i.e., the boron is attached to the terminal carbon of the alkyne group). It then underwent a hydride-transfer process with the assistance of a second borane molecule, and finally reductive elimination generated the trans hydroboration product. Further analysis ascribed the origin of the special trans selectivity to the unique steric effect and electronic effect introduced by the special κ -P-η -BC coordination pattern.
刘课题组引入了一种基于氮杂硼苯的膦 - 钯催化剂,以促进内式1,3 - 烯炔底物中碳碳三键的反式硼氢化反应。尽管实验观察到了优异的产率和选择性,但这种特殊反式选择性的机理和来源仍然未知。在此,进行了全面的理论研究以阐明这些问题。相应地,提出并研究了两种主要机理(内球和外球)。与传统的内球机理不同,在传统内球机理中过渡金属参与氢 - 硼键的断裂,而该反应遵循外球机理,其中钯不直接参与氢 - 硼键的断裂。更具体地说,有利的途径遵循Tsuji - Trost型反应,其中通过形成四配位硼中间体(即硼连接到炔基的末端碳)使氢 - 硼键减弱。然后在第二个硼烷分子的协助下进行氢化物转移过程,最后通过还原消除生成反式硼氢化产物。进一步的分析将这种特殊反式选择性的来源归因于由特殊的κ - P - η - BC配位模式引入的独特空间效应和电子效应。