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配位环境和电子耦合对一族双核配合物氧化还原熵的影响。

Effect of Coordination Environment and Electronic Coupling on Redox Entropy in a Family of Dinuclear Complexes.

作者信息

Carmona-Pérez Daniela, Gao Meiqin, Andes Samantha, Brennessel William W, Thorarinsdottir Agnes E

机构信息

Department of Chemistry, University of Rochester, Rochester, New York 14627, United States.

出版信息

ACS Electrochem. 2025 Feb 18;1(5):741-753. doi: 10.1021/acselectrochem.4c00186. eCollection 2025 May 1.

Abstract

The elucidation of factors that govern the temperature sensitivity of the electrochemical potential is essential to the development of electrochemical systems with target properties. Toward this end, we report a series of isostructural homo- and heterometallic M (M = Fe, Fe, Zn) complexes supported by a phenoxo-centered tetrapyridyl ligand and ancillary carboxylate ligands that enables independent change in (i) charge, (ii) coordination environment of the redox-active center(s), and (iii) electronic coupling strength between redox centers. Variable-temperature electrochemical analysis of the series reveals the temperature coefficient for Fe-based redox couples to be highly dependent on the coordination environment of the redox-active center(s), with Fe centers in a pseudo-octahedral [FeNO] coordination environment affording a 2-fold greater temperature coefficient for the Fe/Fe redox couple than those in ancillary ferrocenyl groups. In contrast, identical temperature coefficients for the Fe/Fe redox event in Fe and FeZn complexes establish electronic coupling strength to have a minimal impact on the temperature dependence of the Fe-based redox couple. Taken together, these results provide important insights for the design of molecular compounds with target redox properties, and they provide the first examination of how electronic coupling influences the temperature dependence of the redox potential and the associated redox entropy in molecular compounds.

摘要

阐明控制电化学势温度敏感性的因素对于开发具有目标特性的电化学系统至关重要。为此,我们报道了一系列由以苯氧为中心的四吡啶配体和辅助羧酸酯配体支撑的同构和异金属M(M = Fe、Fe、Zn)配合物,这些配合物能够独立改变:(i)电荷;(ii)氧化还原活性中心的配位环境;以及(iii)氧化还原中心之间的电子耦合强度。对该系列进行的变温电化学分析表明,基于铁的氧化还原对的温度系数高度依赖于氧化还原活性中心的配位环境,处于伪八面体[FeNO]配位环境中的铁中心为Fe/Fe氧化还原对提供的温度系数比辅助二茂铁基团中的铁中心大2倍。相比之下,Fe和FeZn配合物中Fe/Fe氧化还原事件的相同温度系数表明电子耦合强度对基于铁的氧化还原对的温度依赖性影响最小。综上所述,这些结果为设计具有目标氧化还原特性的分子化合物提供了重要见解,并且首次研究了电子耦合如何影响分子化合物中氧化还原电位的温度依赖性以及相关的氧化还原熵。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/7286/12051193/2ab615f9e595/ec4c00186_0001.jpg

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