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金属有机框架诱导的限域效应在与能源转型相关的分子电催化剂中的作用

The Role of Metal-Organic Framework Induced Confinement Effects on Molecular Electrocatalysts Relevant to the Energy Transition.

作者信息

Hoefnagel Marlene E, Hetterscheid Dennis G H

机构信息

Leiden Institute of Chemistry, Leiden University, Einsteinweg 55, 2333 CC, Leiden, The Netherlands.

出版信息

ChemSusChem. 2025 Jun 17;18(12):e202402676. doi: 10.1002/cssc.202402676. Epub 2025 Apr 24.

Abstract

Metal organic frameworks (MOFs) are promising materials for (electro)catalysis as they can improve stability, reusability, and catalytic current densities of molecular catalysts, thereby combining the advantages of homogeneous- and heterogeneous catalysts. However, much is unknown about the effects of confinement of a catalyst within an MOF on the overall catalytic behavior. The performance of a series of electrocatalysts confined in MOFs is compared to that of the corresponding homogeneous catalysts to evaluate to what extend the catalytic site is affected by confinement in terms of stability, activity, and selectivity. Together the examples discuss depict what happens to a catalyst when it is incorporated into an MOF, and recommendations are made on how to evaluate the electrochemical activity of an MOF in a way that allows for description of such confinement effects on the catalyst performance. It is noted that the limiting factor for the catalytic reaction in MOFs is found in 1) slow electron transport, 2) slow mass transport of reactants and products, or 3) a low activity of the catalytic site itself. Understanding the changes in mass- and electron transport and the resulting effects on catalytic mechanism is essential to be able to bring MOF systems to practical applications.

摘要

金属有机框架材料(MOFs)是用于(电)催化的有前景的材料,因为它们可以提高分子催化剂的稳定性、可重复使用性和催化电流密度,从而兼具均相催化剂和多相催化剂的优点。然而,关于MOF内催化剂的限域对整体催化行为的影响,仍有很多未知之处。将一系列限域在MOF中的电催化剂的性能与相应均相催化剂的性能进行比较,以评估催化位点在稳定性、活性和选择性方面受限域影响的程度。这些示例共同探讨了催化剂掺入MOF时会发生什么,并就如何以能够描述此类限域对催化剂性能影响的方式评估MOF的电化学活性提出了建议。需要注意的是,MOF中催化反应的限制因素存在于以下几个方面:1)电子传输缓慢;2)反应物和产物的传质缓慢;3)催化位点本身活性较低。了解传质和电子传输的变化及其对催化机理的影响对于使MOF系统能够实际应用至关重要。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/bc77/12175046/662bfaa781fe/CSSC-18-e202402676-g011.jpg

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