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氧桥联铱二聚体在 N,O-供体环境中的氧化还原活性:稳定的 Ir(IV,V)配合物的特性研究。

Redox Activity of Oxo-Bridged Iridium Dimers in an N,O-Donor Environment: Characterization of Remarkably Stable Ir(IV,V) Complexes.

机构信息

Department of Chemistry, Yale University , 225 Prospect Street, New Haven, Connecticut 06520, United States.

Laboratorium für Physikalische Chemie, ETH Zürich , Vladimir-Prelog Weg 2, 8093 Zürich, Switzerland.

出版信息

J Am Chem Soc. 2017 Jul 19;139(28):9672-9683. doi: 10.1021/jacs.7b04874. Epub 2017 Jul 5.

Abstract

Chemical and electrochemical oxidation or reduction of our recently reported Ir(IV,IV) mono-μ-oxo dimers results in the formation of fully characterized Ir(IV,V) and Ir(III,III) complexes. The Ir(IV,V) dimers are unprecedented and exhibit remarkable stability under ambient conditions. This stability and modest reduction potential of 0.99 V vs NHE is in part attributed to complete charge delocalization across both Ir centers. Trends in crystallographic bond lengths and angles shed light on the structural changes accompanying oxidation and reduction. The similarity of these mono-μ-oxo dimers to our Ir "blue solution" water-oxidation catalyst gives insight into potential reactive intermediates of this structurally elusive catalyst. Additionally, a highly reactive material, proposed to be a Ir(V,V) μ-oxo species, is formed on electrochemical oxidation of the Ir(IV,V) complex in organic solvents at 1.9 V vs NHE. Spectroelectrochemistry shows reversible conversion between the Ir(IV,V) and proposed Ir(V,V) species without any degradation, highlighting the exceptional oxidation resistance of the 2-(2-pyridinyl)-2-propanolate (pyalk) ligand and robustness of these dimers. The Ir(III,III), Ir(IV,IV) and Ir(IV,V) redox states have been computationally studied both with DFT and multiconfigurational calculations. The calculations support the stability of these complexes and provide further insight into their electronic structures.

摘要

我们最近报道的 Ir(IV,IV)单μ-氧双聚体的化学和电化学氧化或还原导致完全表征的 Ir(IV,V)和 Ir(III,III)配合物的形成。Ir(IV,V)双聚体是前所未有的,在环境条件下表现出显著的稳定性。这种稳定性和适度的还原电位为 0.99 V 与 NHE 相比,部分归因于两个 Ir 中心之间的完全电荷离域。晶体学键长和角度的趋势揭示了伴随氧化和还原的结构变化。这些单μ-氧双聚体与我们的 Ir“蓝色溶液”水氧化催化剂的相似性为该结构难以捉摸的催化剂的潜在反应中间体提供了深入的了解。此外,在 1.9 V 与 NHE 相比的有机溶剂中电化学氧化 Ir(IV,V)配合物时形成了一种高反应性物质,推测为 Ir(V,V)μ-氧物种。光谱电化学显示 Ir(IV,V)和提议的 Ir(V,V)物种之间的可逆转化而没有任何降解,突出了 2-(2-吡啶基)-2-丙醇 (pyalk)配体的异常氧化稳定性和这些二聚体的坚固性。Ir(III,III)、Ir(IV,IV)和 Ir(IV,V)氧化还原态已通过 DFT 和多组态计算进行了计算研究。这些计算支持这些配合物的稳定性,并提供了对其电子结构的进一步了解。

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