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Earth-Abundant Transition Metal Catalysts for Alkene Hydrosilylation and Hydroboration: Opportunities and Assessments

机译:富含烃的过渡金属催化剂用于烯烃的氢化硅烷化和硼氢化反应:机遇与评估

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摘要

The addition of a silicon-hydrogen or a boron-hydrogen bond across a carbon-carbon multiple bonds is a well-established method for the introduction of versatile silane and borane functional groups to base hydrocarbon feedstocks. Transition metal catalysis, historically with precious second- and third- row transition metals, has been used to broaden the scope of the hydrofunctionalization reaction, improve reaction rate and enhance selectivity. The anti-Markovnikov selectivity of platinum-catalyzed hydrosilylation of alkenes, for example, is an enabling synthetic technology in the multibillion-dollar silicones industry. Increased emphasis on sustainable catalytic methods and more economic processes has shifted focus to catalysis with more earth-abundant transition metals such as iron, cobalt and nickel. This review describes contemporary approaches and offers a contextual analysis of catalytic alkene hydrosilylation and hydroboration reactions using first-row transition metals. Emphasis is placed on defining advances in the field, what constitutes catalyst cost, safety, and important design features to enable precious metal-like reactivity, as well as new chemistry that is unique to first-row transition metals.
机译:跨碳-碳多重键添加硅氢键或硼氢键是将通用的硅烷和硼烷官能团引入基础烃原料的公认方法。过渡金属催化,一直以来都是用第二排和第三排贵重过渡金属催化的,已被用于扩大加氢官能化反应的范围,提高反应速率和提高选择性。例如,铂催化的烯烃氢化硅烷化的抗马尔科夫尼科夫选择性是数十亿美元有机硅工业中一种使能的合成技术。对可持续催化方法和更经济方法的日益重视已将重点转移到了更多的地球上富集的过渡金属(如铁,钴和镍)的催化上。这篇综述描述了当代方法,并提供了使用第一行过渡金属对催化烯烃氢化硅烷化和硼氢化反应的背景分析。重点放在定义该领域的进展,构成催化剂成本,安全性和重要设计特征(以实现类似贵金属的反应性)以及首行过渡金属独有的新化学方法上。

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