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用于甲酸脱氢的过渡金属钳形催化剂:机理视角

Transition metal pincer catalysts for formic acid dehydrogenation: a mechanistic perspective.

作者信息

Kumar N Sai, Adhikary Anubendu

机构信息

School of Advanced Sciences, VIT-AP University, Amaravati, Andhra Pradesh, India.

出版信息

Front Chem. 2024 Aug 26;12:1452408. doi: 10.3389/fchem.2024.1452408. eCollection 2024.

Abstract

The storage and transportation of hydrogen gas, a non-polluting alternative to carbon-based fuels, have always been challenging due to its extreme flammability. In this regard, formic acid (FA) is a promising liquid organic hydrogen carrier (LOHC), and over the past decades, significant progress has been made in dehydrogenating FA through transition metal catalysis. In this review, our goal is to provide a detailed insight into the existing processes to expose various mechanistic challenges associated with FA dehydrogenation (FAD). Specifically, methodologies catalyzed by pincer-ligated metal complexes were chosen. Pincer ligands are preferred as they provide structural rigidity to the complexes, making the isolation and analysis of reaction intermediates less challenging and consequently providing a better mechanistic understanding. In this perspective, the catalytic activity of the reported pincer complexes in FAD was overviewed, and more importantly, the catalytic cycles were examined in detail. Further attention was given to the structural modifications, role of additives, reaction medium, and their crucial effects on the outcome.

摘要

氢气作为一种无污染的碳基燃料替代品,由于其极高的易燃性,其储存和运输一直具有挑战性。在这方面,甲酸(FA)是一种很有前景的液体有机氢载体(LOHC),在过去几十年里,通过过渡金属催化使FA脱氢取得了重大进展。在本综述中,我们的目标是深入详细地了解现有过程,以揭示与FA脱氢(FAD)相关的各种机理挑战。具体而言,选择了由钳形配体金属配合物催化的方法。选择钳形配体是因为它们为配合物提供了结构刚性,使反应中间体的分离和分析难度降低,从而能更好地理解反应机理。从这个角度出发,综述了所报道的钳形配合物在FAD中的催化活性,更重要的是,详细研究了催化循环。还进一步关注了结构修饰、添加剂的作用、反应介质及其对结果的关键影响。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/a147/11385309/87d439cd148b/FCHEM_fchem-2024-1452408_wc_sch1.jpg

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