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铁催化剂介导的二氧化碳还原:指导选择性的机制与中间体

Carbon Dioxide Reduction Mediated by Iron Catalysts: Mechanism and Intermediates That Guide Selectivity.

作者信息

Bonetto Ruggero, Crisanti Francesco, Sartorel Andrea

机构信息

Department of Chemical Sciences, University of Padova, via Marzolo 1, 35131 Padova, Italy.

出版信息

ACS Omega. 2020 Aug 20;5(34):21309-21319. doi: 10.1021/acsomega.0c02786. eCollection 2020 Sep 1.

DOI:10.1021/acsomega.0c02786
PMID:32905319
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC7469117/
Abstract

The reduction of carbon dioxide represents an ambitious target, with potential impact on several of the United Nations' sustainable development goals including climate action, renewable energy, sustainable cities, and communities. This process shares a common issue with other redox reactions involved in energy-related schemes (i.e., proton reduction to hydrogen and water oxidation to oxygen), that is, the need for a catalyst in order to proceed at sustainable rates. Moreover, the reduction of CO faces an additional selectivity complication, since several products can be formed, including carbon monoxide, formic acid/formate, methanol, and methane. In this Mini-Review, we will discuss iron-based molecular catalysts that catalyze the reduction of CO, focusing in particular on the selectivity of the processes, which is rationalized and guided on the basis of the reaction mechanism. Inspired by the active sites of carbon monoxide dehydrogenases, several synthetic systems have been proposed for the reduction of CO; these are discussed in terms of key intermediates such as iron hydrides or Fe-CO adducts, where the ligand coordination motif, together with the presence of co-additives such as Brønsted acids, nucleophiles, or CO trapping moieties, can guide the selectivity of the reaction. A mechanistic comparison is traced with heterogeneous iron single-atom catalysts. Perspectives on the use of molecular catalysts in devices for sustainable reduction of CO are finally given.

摘要

二氧化碳的还原是一个宏伟目标,对联合国的若干可持续发展目标具有潜在影响,包括气候行动、可再生能源、可持续城市和社区。这一过程与能源相关方案中涉及的其他氧化还原反应(即质子还原为氢气和水氧化为氧气)存在一个共同问题,即需要一种催化剂才能以可持续的速率进行。此外,CO的还原还面临额外的选择性复杂性,因为可以形成多种产物,包括一氧化碳、甲酸/甲酸盐、甲醇和甲烷。在本综述中,我们将讨论催化CO还原的铁基分子催化剂,特别关注反应过程的选择性,并根据反应机理对其进行合理化和指导。受一氧化碳脱氢酶活性位点的启发,已提出了几种用于CO还原的合成体系;这些体系将根据关键中间体进行讨论,如铁氢化物或Fe-CO加合物,其中配体配位模式以及布朗斯特酸、亲核试剂或CO捕获基团等共添加剂的存在,可以指导反应的选择性。与非均相铁单原子催化剂进行了机理比较。最后给出了分子催化剂在可持续还原CO装置中的应用前景。

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本文引用的文献

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ChemSusChem. 2020 Aug 21;13(16):4111-4120. doi: 10.1002/cssc.202001143. Epub 2020 Aug 3.
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