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在氧气环境中对一种析氢钴二亚胺-二肟配合物的机理研究:二级配位层、布朗斯特酸和轴向配体的作用。

Mechanistic Investigations of a Hydrogen-Evolving Cobalt Diimine-Dioxime Complex in an Oxygen Environment: Roles of Secondary Coordination Sphere, Bro̷nsted Acid, and Axial Ligand.

作者信息

Tsai Yu-Syuan, Chen Yu-Wei, Dayawansa Charasee Laddika, Chang Hsuan, Chen Wen-Ching, Shen Jiun-Shian, Ong Tiow-Gan, Yap Glenn P A, Wang Vincent C-C

机构信息

Department of Chemistry, National Sun Yat-sen University, Kaohsiung, Taiwan 80424, R.O.C.

Institute of Chemistry, Academia Sinica, Taipei, Taiwan 11529, R.O.C.

出版信息

Inorg Chem. 2025 Mar 10;64(9):4213-4222. doi: 10.1021/acs.inorgchem.4c03301. Epub 2025 Feb 25.

Abstract

The concept of a secondary coordination sphere (SCS) has been widely adopted in designing molecular electrocatalysts to promote energy-conversion reactions, such as the hydrogen-evolution reaction (HER) or the reduction of carbon dioxide. The role of SCS in the oxygen-tolerant properties of molecular electrocatalysts is less explored. An HER electrocatalyst, the cobalt diimine-dioxime complex, is one of the metal complexes designed by the concept of SCS to facilitate HER and retain its reactivity in an oxygen environment. Nevertheless, the mechanism underlying its oxygen tolerance remains unclear. This study revealed that in the presence of molecular oxygen, the oxygen reduction reaction (ORR) predominates over the hydrogen evolution reaction (HER) for this cobalt complex. Further investigations suggest that intramolecular proton transfer through SCS and intermolecular proton transfer from exogenous proton sources mutually dictate the product selectivity of ORR between HO and HO, thereby determining the stability of the complex under HER. In addition, the choice of labile ligands has emerged as a useful factor in enhancing oxygen tolerance. These findings provide valuable design principles for developing oxygen-tolerant molecular catalysts and shed light on the reactivity and product selectivity controlled by the interplay of proton transfer routes.

摘要

在设计分子电催化剂以促进能量转换反应(如析氢反应(HER)或二氧化碳还原反应)时,二级配位球(SCS)的概念已被广泛采用。SCS在分子电催化剂的耐氧性能中的作用尚未得到充分探索。一种析氢电催化剂——钴二亚胺 - 二肟配合物,是基于SCS概念设计的金属配合物之一,用于促进析氢反应并在氧气环境中保持其反应活性。然而,其耐氧性的潜在机制仍不清楚。本研究表明,在分子氧存在的情况下,对于这种钴配合物,氧还原反应(ORR)比析氢反应(HER)更占优势。进一步的研究表明,通过SCS的分子内质子转移和来自外源质子源的分子间质子转移共同决定了ORR在HO和HO之间的产物选择性,从而决定了该配合物在HER条件下的稳定性。此外,选择不稳定配体已成为提高耐氧性的一个有用因素。这些发现为开发耐氧分子催化剂提供了有价值的设计原则,并揭示了由质子转移途径相互作用控制的反应活性和产物选择性。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/82be/11898077/eac45c36badc/ic4c03301_0005.jpg

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