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Catalytic Synthesis of Oligosiloxanes Mediated by an Air Stable Catalyst, (C6F5)3B(OH2)

机译:催化合成空气稳定催化剂介导的寡硅氧烷(C6F5)3B(OH2)

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The utility of (C6F5)3B(OH2) as catalyst for the simple and environmentally benign synthesis of oligosiloxanes directly from hydrosilanes, is reported. This protocol offers several advantages compared to other methods of synthesizing siloxanes, such as mild reaction conditions, low catalyst loading, and a short reaction time with high yields and purity. The considerable H2O-tolerance of (C6F5)3B(OH2) promoted a catalytic route to disiloxanes which showed 99% conversion of three tertiary silanes, Et3SiH, PhMe2SiH and Ph3SiH. Preliminary data on the synthesis of unsymmetrical disiloxanes (Si-O-Si’) suggests that by modifying the reaction conditions and/or using a 1:1 combination of silane to silanol the cross-product can be favoured. Intramolecular reactions of disilyl compounds with catalytic (C6F5)3B(OH2) led to the formation of novel bridged siloxanes, containing a Si-O-Si linkage within a cyclic structure as the major product. Moreover, the reaction conditions enabled recovery and recycling of the catalyst. The catalyst was re-used 5 times and demonstrated excellent conversion for each substrate at 1.0 mol% catalyst loading. This seemingly simple reaction has a rather complicated mechanism. With the hydrosilane (R3SiH) as the sole starting material, the fate of the reaction largely depends on the creation of silanol (R3SiOH) from R3SiH as these two undergo dehydrocoupling to yield a disiloxane product. Generation of the silanol is based on a modified Piers-Rubinsztajn reaction. Once the silanol has been produced, the mechanism involves a series of competitive reactions with multiple catalytically relevant species involving water, silane and silanol interacting with the Lewis acid and the favoured reaction cycle depends on the concentration of various species in solution.
机译:报道了(C6F5)3B(OH2)作为催化剂的催化剂,用于直接来自氢硅烷的简单和环境良性合成寡硅氧烷。与合成硅氧烷的其他方法相比,该方案提供了几种优点,例如温和的反应条件,低催化剂负载,以及具有高产率和纯度的短反应时间。 (C6F5)3B(OH2)的相当大的H 2耐受性促进了化硅氧烷的催化途径,其显示出> 99%的三级硅烷转化,ET3SIH,PHME2SIH和PH3SIH。关于非对称二硅氧烷合成的初步数据(Si-O-Si')表明通过改变反应条件和/或使用1:1与硅烷组合硅烷与硅烷组合,可以赞成杂交。含有催化剂(C6F5)3B(OH2)的酸甲硅烷基化合物的分子内反应导致了新型桥接硅氧烷的形成,含有在环状结构内的Si-O-Si键作为主要产物。此外,反应条件使催化剂的回收率和再循环能够。将催化剂重新使用5次,并在1.0mol%催化剂负载下对每个基板进行了优异的转化。这种看似简单的反应具有相当复杂的机制。用氢硅烷(R3SiH)作为唯一的原料,反应的命运很大程度上取决于从R3SIH的硅烷醇(R3SIOH)的产生,因为这两者经历脱水耦合以产生二氧化油e产物。硅烷醇的产生是基于改性的Piers-RubinsZtajn反应。一旦生产硅烷醇,该机制涉及一系列具有涉及水,硅烷和硅烷醇与路易斯酸相互作用的多种催化相关物种的竞争反应,并且优化的反应循环取决于溶液中各种物种的浓度。

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