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双齿铜配合物的结构、键合和儿茶酚酶机制。

Structure, bonding, and catecholase mechanism of copper bispidine complexes.

机构信息

Universität Heidelberg, Anorganisch-Chemisches Institut, INF 270, D-69120 Heidelberg, Germany.

出版信息

Inorg Chem. 2012 Sep 3;51(17):9214-25. doi: 10.1021/ic3004917. Epub 2012 Aug 21.

Abstract

Oxygen activation by copper(I) complexes with tetra- or pentadentate mono- or dinucleating bispidine ligands is known to lead to unusually stable end-on-{(bispidine)Cu}(2)(O(2)) complexes (bispidines are methyl-2,4-bis(2-pyridin-yl)-3,7-diazabicyclo-[3.3.1]-nonane-9-diol-1,5-dicarboxylates); catecholase activity of these dinuclear Cu(II/I) systems has been demonstrated experimentally, and the mechanism has been thoroughly analyzed. The present density functional theory (DFT) based study provides an analysis of the electronic structure and catalytic activity of {(bispidine)Cu}(2)(O(2)). As a result of the unique square pyramidal coordination geometry, the d(x(2)-y(2)) ground state leads to an unusual σ/π bonding pattern, responsible for the stability of the peroxo complex and the observed catecholase activity with a unique mechanistic pathway. The oxidation of catechol to ortho-quinone (one molecule per catalytic cycle and concomitant formation of one equivalent of H(2)O(2)) is shown to occur via an associative, stepwise pathway. The unusual stability of the end-on-peroxo-dicopper(II) complex and isomerization to copper(II) complexes with chelating catecholate ligands, which inhibit the catalytic cycle, are shown to be responsible for an only moderate catalytic activity.

摘要

铜(I)配合物与四齿或五齿单核或双核双吡啶配体的氧活化已知会导致异常稳定的端接-(双吡啶)Cu(O(2))](2+)配合物(双吡啶是甲基-2,4-双(2-吡啶基)-3,7-二氮杂双环-[3.3.1]-壬烷-9-二醇-1,5-二羧酸酯);这些双核 Cu(II/I) 体系的儿茶酚酶活性已在实验中得到证明,并且该机制已得到彻底分析。本基于密度泛函理论 (DFT) 的研究提供了对(双吡啶)Cu(O(2))](2+)的电子结构和催化活性的分析。由于独特的四方锥配位几何形状,d(x(2)-y(2))基态导致不寻常的σ/π键合模式,这是过氧配合物稳定性和观察到的儿茶酚酶活性的原因,具有独特的反应机制。儿茶酚氧化为邻苯醌(每催化循环一个分子,同时形成一个当量的 H(2)O(2))被证明是通过缔合的逐步途径发生的。异常稳定的端接过氧双核铜(II)配合物和异构化为具有螯合儿茶酚配体的铜(II)配合物,这会抑制催化循环,被证明是仅具有中等催化活性的原因。

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