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Metal‐Bonded Redox‐Active Triarylamines and Their Interactions: Synthesis Structure and Redox Properties of Paddle‐Wheel Copper Complexes

机译:金属键合的氧化还原活性三芳基胺及其相互作用:桨轮铜配合物的合成结构和氧化还原特性

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摘要

Four new triphenylamine ligands with different substituents in the para position and their corresponding copper(II) complexes are reported. This study includes their structural, spectroscopic, magnetic, and electrochemical properties. The complexes possess a dinuclear copper(II) paddle‐wheel core, a building unit that is also common in metal‐organic frameworks. Electrochemical measurements demonstrate that the triphenylamine ligands and the corresponding complexes are susceptible to oxidation, resulting in the formation of stable radical cations. The square‐wave voltammograms observed for the complexes are similar to those of the ligands, except for a slight shift in potential. Square‐wave voltammetry data show that, in the complexes, these oxidations can be described as individual one‐electron processes centered on the coordinated ligands. Spectroelectrochemistry reveals that, during the oxidation of the complexes, no difference can be detected for the spectra of successively oxidized species. For the absorption bands of the oxidized species of the ligands and complexes, only a slight shift is observed. ESR spectra for the chemically oxidized complexes indicate ligand‐centered radicals. The copper ions of the paddle‐wheel core are strongly antiferromagnetic coupled. DFT calculations for the fully oxidized complexes indicate a very weak ferromagnetic coupling between the copper ions and the ligand radicals, whereas a very weak antiferromagnetic coupling is found among the ligand radicals.
机译:报道了在对位具有不同取代基的四个新的三苯胺配体及其相应的铜(II)配合物。这项研究包括其结构,光谱,磁性和电化学性质。这些配合物具有双核铜(II)桨轮芯,这是一种在金属有机框架中也很常见的建筑单元。电化学测量表明,三苯胺配体和相应的络合物易于氧化,导致形成稳定的自由基阳离子。对于复合物观察到的方波伏安图与配体的方波伏安图相似,只是电位略有变化。方波伏安法数据表明,在配合物中,这些氧化可以描述为以配位体为中心的单个单电子过程。光谱电化学显示,在复合物氧化期间,连续氧化的物质的光谱没有差异。对于配体和配合物的氧化物种的吸收带,仅观察到轻微的偏移。化学氧化复合物的ESR光谱表明以配体为中心的自由基。桨轮芯的铜离子是强反铁磁耦合的。对完全氧化的配合物的DFT计算表明,铜离子与配体自由基之间的铁磁耦合非常弱,而在配体自由基之间却发现了非常弱的反铁磁耦合。

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