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用于CO电还原的羰基铼分子催化剂:联吡啶取代基对催化的影响,模拟锚定功能以修饰电极。

Rhenium Carbonyl Molecular Catalysts for CO Electroreduction: Effects on Catalysis of Bipyridine Substituents Mimicking Anchorage Functions to Modify Electrodes.

作者信息

Guyot Mélanie, Lalloz Marie-Noëlle, Aguirre-Araque Juan S, Rogez Guillaume, Costentin Cyrille, Chardon-Noblat Sylvie

机构信息

DCM, CNRS, Univ Grenoble Alpes, Grenoble 38000, France.

CNRS, IPCMS, University of Strasbourg, Strasbourg 67034, France.

出版信息

Inorg Chem. 2022 Oct 10;61(40):16072-16080. doi: 10.1021/acs.inorgchem.2c02473. Epub 2022 Sep 27.

Abstract

Heterogenization of molecular catalysts on (photo)electrode surfaces is required to design devices performing processes enabling to store renewable energy in chemical bonds. Among the various strategies to immobilize molecular catalysts, direct chemical bonding to conductive surfaces presents some advantages because of the robustness of the linkage. When the catalyst is, as it is often the case, a transition metal complex, the anchoring group has to be connected to the complex through the ligands, and an important question is thus raised on the influence of this function on the redox and on the catalytic properties of the complex. Herein, we analyze the effect of conjugated and non conjugated substituents, structurally close to anchoring functions previously used to immobilize a rhenium carbonyl bipyridyl molecular catalyst for supported CO electroreduction. We show that carboxylic ester groups, mimicking anchoring the catalyst via carboxylate binding to the surface, have a drastic effect on the catalytic activity of the complex toward CO electroreduction. The reasons for such an effect are revealed via a combined spectro-electrochemical analysis showing that the reducing equivalents are mainly accumulated on the electron-withdrawing ester on the bipyridine ligand preventing the formation of the rhenium(0) center and its interaction with CO. Alternatively, alkyl-phosphonic ester substituents, not conjugated with the bpy ligand, mimicking anchoring the catalyst via phosphonate binding to the surface, allow preserving the catalytic activity of the complex.

摘要

为了设计能够将可再生能源存储在化学键中的装置,需要在(光)电极表面实现分子催化剂的异质化。在固定分子催化剂的各种策略中,由于键合的稳定性,直接化学键合到导电表面具有一些优势。当催化剂通常是过渡金属配合物时,锚定基团必须通过配体与配合物相连,因此,关于该功能对配合物的氧化还原和催化性能的影响就产生了一个重要问题。在此,我们分析了共轭和非共轭取代基的影响,这些取代基在结构上与先前用于固定用于支持CO电还原的铼羰基联吡啶分子催化剂的锚定功能相近。我们表明,通过羧酸盐与表面结合来模拟锚定催化剂的羧酸酯基团,对配合物对CO电还原的催化活性有显著影响。通过光谱电化学分析相结合揭示了这种影响的原因,结果表明还原当量主要积累在联吡啶配体上的吸电子酯上,从而阻止了铼(0)中心的形成及其与CO的相互作用。另外,与bpy配体不共轭的烷基膦酸酯取代基,通过膦酸盐与表面结合来模拟锚定催化剂,能够保持配合物的催化活性。

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