首页> 外文期刊>Dalton transactions: An international journal of inorganic chemistry >DFT study on the reaction mechanism of the ring closing enyne metathesis (RCEYM) catalyzed by molybdenum alkylidene complexes?
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DFT study on the reaction mechanism of the ring closing enyne metathesis (RCEYM) catalyzed by molybdenum alkylidene complexes?

机译:DFT研究钼亚烷基络合物催化闭环烯炔复分解(RCEYM)的反应机理?

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The ring closing enyne metathesis reaction (RCEYM) catalyzed by molybdenum based monoalkoxy pyrrolyl Schrock type catalysts has been studied by means of DFT (B3LYP-D) calculations. The two potential active alkylidene species as well as the three proposed reaction mechanisms (ene-then-yne, endo-ynethen- ene and exo-yne-then-ene) have been taken into account. Moreover, the influence on the exoand endo- selectivity of the reactant substituents has also been explored. Results show that, in contrast to what is found for RCEYM processes catalyzed by Ru-based catalysts, the metallacyclobutene is a very short-living reaction intermediate that can be present in two isomeric forms (trigonal bipyramid (TBP) coordination around the metal center and square based pyramid (SPY) coordination). These two isomers are directly involved in the reaction mechanism, and the ring opening takes place from the SPY species. Moreover and regardless of the nature of the reacting metal-alkylidene, the yne-then-ene pathways (endo- or exo-) are computed to present significantly lower energy barriers than the ene-then-yne pathway and thus the latter is computed not to take place. Finally, the exo-/endo- selectivity is predicted to highly depend on the sterics of the two carbon ends of the alkyne fragment. In this way, the carbon bearing the largest group prefers to interact with the carbon end of the metal-alkylidene. This places the bulkiest groups as far away as possible from the metal fragment and overall leads to a generally lower energy barrier for the metallacyclobutene formation, the key step in defining the exo-/endo- selectivity.
机译:通过DFT(B3LYP-D)计算研究了基于钼的单烷氧基吡咯基Schrock型催化剂催化的闭环烯炔复分解反应(RCEYM)。已经考虑了两个潜在的活性亚烷基物质以及三个建议的反应机理(烯-然后-炔,内-烯-烯和外-炔-然后-烯)。此外,还研究了对反应物取代基的外向和内向选择性的影响。结果表明,与用Ru基催化剂催化的RCEYM方法发现的相反,金属环环丁烯是一种非常短活的反应中间体,可以以两种异构体形式存在(金属中心周围的三角双锥体(TBP)配位和基于正方形的金字塔(SPY)协调)。这两种异构体直接参与反应机理,开环发生在SPY物种上。而且,并且不管反应的金属-亚烷基的性质如何,经计算的炔烃-烯-烯途径(内-或外-)具有比烯-烯烃-烯途径低得多的能垒,因此,后者不被计算。发生。最后,预测外/内选择性高度依赖于炔烃片段两个碳末端的空间。这样,带有最大基团的碳优选与金属亚烷基的碳末端相互作用。这使最庞大的基团尽可能远离金属片段,并总体上导致金属环丁烯形成的能量垒通常较低,这是定义外-/内-选择性的关键步骤。

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