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Toward the Understanding of the Structure–Activity Correlation in Single-Site Mn Covalent Organic Frameworks for Electrocatalytic CO2 Reduction

共价键 催化作用 电化学 二聚体 位阻效应 选择性 结晶度 氧化还原 三聚体 连接器 化学 光化学 结晶学 无机化学 立体化学 电极 物理化学 有机化学 操作系统 计算机科学
作者
Geyla C. Dubed Bandomo,Federico Franco,Changwei Liu,Suvendu Sekhar Mondal,Angelo Gallo,Carlo Nervi,Julio Lloret‐Fillol
出处
期刊:ACS applied energy materials [American Chemical Society]
卷期号:7 (3): 1348-1357 被引量:9
标识
DOI:10.1021/acsaem.3c03117
摘要

The encapsulation of organometallic complexes into reticular covalent organic frameworks (COFs) represents an effective strategy for the immobilization of molecular electrocatalysts. In particular, well-defined polypyridyl Mn sites embedded into a crystalline COF backbone ( COF bpyMn ) were found to exhibit higher selectivity and activity toward electrochemical CO 2 reduction compared to the parent molecular derivative noncovalently immobilized on carbon electrodes. In situ mechanistic studies revealed that the electronic and steric features of the reticular framework strongly affect the redox mechanism of the Mn sites, stabilizing the formation of a mononuclear Mn(I) radical anion intermediate over the most common off-cycle Mn 0 –Mn 0 dimer. Herein, we report the study of a Mn-based COF ( COF PTMn ), introducing a larger phenanthroline building block, to explore how tuning the structural and electronic properties of the lattice may affect the catalytic CO 2 reduction performance and the mechanism at the molecular level of the reticular system. The Mn sites encapsulated into the reticular COF PTMn exhibited a remarkable enhancement in the intrinsic catalytic CO 2 reduction activity at near-neutral pH compared to that of the corresponding noncovalently immobilized molecular derivative. On the other hand, the poor crystallinity and porosity of COF PTMn, likely introduced by the lattice expansion and spatial dynamics of the phenanthroline linker, were found to limit its catalytic performances compared to those of the bipyridyl COF bpyMn analogue. ATR-IR spectroelectrochemistry revealed that the higher spatial mobility of the Mn sites does not completely suppress the Mn 0 –Mn 0 dimerization upon the electrochemical reduction of the Mn sites at the COF bpyMn . This work highlights the positive role of the reticular structure of the material in enhancing its catalytic activity versus that of its molecular counterpart and provides useful hints for the future design and development of efficient reticular frameworks for electrocatalytic applications.
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