Tretiakov Serhii, Witteman Léon, Lutz Martin, Moret Marc-Etienne
Utrecht University, Organic Chemistry & Catalysis, Institution Debye Institute for Nanomaterials Science, Faculty of Science, 3584 CG, Utrecht, The Netherlands.
Utrecht University, Structural Biochemistry, Bijvoet Centre for Biomolecular Research, Faculty of Science, 3584 CH, Utrecht, The Netherlands.
Angew Chem Int Ed Engl. 2021 Apr 19;60(17):9618-9626. doi: 10.1002/anie.202015960. Epub 2021 Mar 12.
Compounds of main-group elements such as silicon are attractive candidates for green and inexpensive catalysts. For them to compete with state-of-the-art transition-metal complexes, new reactivity modes must be unlocked and controlled, which can be achieved through strain. Using a tris(2-skatyl)methylphosphonium ([TSMPH ] ) scaffold, we prepared the strained cationic silane [TSMPSiH] . In stark contrast with the generally hydridic Si-H bond character, it is acidic with an experimental pK within 4.7-8.1, lower than in phenol, benzoic acid, and the few hydrosilanes with reported pK values. We show that ring strain significantly contributes to this unusual acidity along with inductive and electrostatic effects. The conjugate base, TSMPSi, activates a THF molecule in the presence of CH-acids to generate a highly fluxional alkoxysilane via trace amounts of [TSMPSiH] functioning as a strain-release Lewis acid. This reaction involves a formal oxidation-state change from Si to Si , presenting intriguing similarities with transition-metal-mediated processes.
诸如硅等主族元素的化合物是绿色且廉价催化剂的理想候选物。为了使其能与最先进的过渡金属配合物竞争,必须解锁并控制新的反应模式,这可以通过应变来实现。利用三(2-司卡基)甲基鏻([TSMPH⁺])支架,我们制备了应变阳离子硅烷[TSMPSiH⁺]。与通常具有氢化物性质的Si-H键特征形成鲜明对比的是,它呈酸性,实验测得的pKa在4.7 - 8.1之间,低于苯酚、苯甲酸以及少数报道了pKa值的硅烷。我们表明,环应变以及诱导和静电效应显著促成了这种异常的酸性。共轭碱TSMPSi在存在C-H酸的情况下活化四氢呋喃分子,通过痕量的[TSMPSiH⁺]作为应变释放路易斯酸生成高度易变的烷氧基硅烷。该反应涉及从Si到Si的形式氧化态变化,与过渡金属介导的过程呈现出有趣的相似性。