Olivo Giorgio, Cussó Olaf, Borrell Margarida, Costas Miquel
Departament de Química and Institut de Química Computacional i Catàlisi (IQCC), Universitat de Girona, Campus Montilivi, 17071, Girona, Catalonia, Spain.
J Biol Inorg Chem. 2017 Apr;22(2-3):425-452. doi: 10.1007/s00775-016-1434-z. Epub 2017 Jan 25.
The selective oxidation of hydrocarbons is a challenging reaction for synthetic chemists, but common in nature. Iron oxygenases activate the O-O bond of dioxygen to perform oxidation of alkane and alkenes moieties with outstanding levels of regio-, chemo- and stereoselectivity. Along a bioinspired approach, iron coordination complexes which mimic structural and reactivity aspects of the active sites of nonheme iron oxygenases have been explored as oxidation catalysts. This review describes the evolution of this research field, from the early attempts to reproduce the basic reactivity of nonheme iron oxygenases to the development of effective iron oxidation catalysts. The work covers exclusively nonheme iron complexes which rely on HO or O as terminal oxidants. First, it delineates the key steps and the essential catalyst design principles required to activate the peroxide bond at nonheme iron centers without (or at least minimizing) the release of free-diffusing radicals. It follows with a critical description of the mechanistic pathways which govern the reaction between iron complexes and HO to generate the oxidizing species. Eventually, the work presents a state-of-the-art report on the use of these catalysts in aliphatic C-H oxidation, olefin epoxidation and alkene syn-dihydroxylation, under substrate-limiting conditions. A special focus is given on the main strategies elaborated to tune catalyst activity and selectivity by modification of its structure. The work is concluded by a concise discussion on the essential progresses of these oxidation catalysts together with the challenges that remain still to be tackled.
对于合成化学家而言,碳氢化合物的选择性氧化是一个具有挑战性的反应,但在自然界中却很常见。铁加氧酶能激活双氧的O - O键,以出色的区域、化学和立体选择性对烷烃和烯烃部分进行氧化。沿着仿生学的方法,人们探索了模拟非血红素铁加氧酶活性位点的结构和反应性的铁配位络合物作为氧化催化剂。本综述描述了这一研究领域的发展历程,从早期重现非血红素铁加氧酶基本反应性的尝试到有效铁氧化催化剂的开发。这项工作专门涵盖依赖HO或O作为终端氧化剂的非血红素铁络合物。首先,它阐述了在非血红素铁中心激活过氧化物键而不(或至少最小化)释放自由扩散自由基所需的关键步骤和基本催化剂设计原则。接着对控制铁络合物与HO反应以生成氧化物种的机理途径进行了批判性描述。最后,该工作给出了关于这些催化剂在底物受限条件下用于脂肪族C - H氧化、烯烃环氧化和烯烃顺式二羟基化的最新报告。特别关注了通过修饰其结构来调节催化剂活性和选择性的主要策略。文章最后简要讨论了这些氧化催化剂的重要进展以及仍有待解决的挑战。