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通过非键轨道相互作用利用低价金属中心。

Harnessing low-valent metal centers through non-bonding orbital interactions.

机构信息

Centre for Catalysis Research and Innovation and Department of Chemistry, University of Ottawa, Ottawa, Ontario K1N 6N5, Canada.

出版信息

Inorg Chem. 2010 Nov 15;49(22):10635-41. doi: 10.1021/ic1016438. Epub 2010 Oct 12.

Abstract

The synthesis, characterization, and computational analysis of a series of low-valent, In(I) complexes bearing the bis(imino)pyridine scaffold, {Ar'N=CPh}(2)(NC(5)H(3)), is reported. A stepwise steric reduction of the aryl groups on the imine substituents around the coordination site, (Ar' = 2,5-(t)Bu(2)C(6)H(3), 2,6-(i)Pr(2)C(6)H(3), 2,6-(CH(3)CH(2))(2)C(6)H(3)) is explored through the spectroscopic and crystallographic examination of complexes [{Ar'N=CPh}(2)(NC(5)H(3))]In(+)(OTf)(-) (1-3). Compounds 1-3 displayed long In-N and In-OTf distances indicating only weak or no coordination. Application of the ligand with Ar' = 2,6-(CH(3))(2)C(6)H(3) led to an In(III) bis(imino)pyridine complex, [{2,6-Me(2)C(6)H(3)N=CPh}(2)(NC(5)H(3))]In(OTf)(2)Cl 4 with coordinated ligand, chloride, and triflate groups. Computational analysis of the interactions between the In cation and the ligands (orbital populations, bond order, and energy decomposition analysis) point to only minimal covalent interactions of the In(I) cation with the ligands. Although it features three N donor centers, the bis(imino)pyridine ligand provides little ligand-to-metal donation. A thorough electronic structure analysis revealed a correlation of compound stability with the reduced contribution of the In(I) 5s lone electron pair to the highest occupied molecular orbital (HOMO) of the cation. This effect, originating from non-bonding orbital interactions between the metal and the ligand, is more prominent in sterically crowded environments. The discovery of this correlation may help in designing new low-valent complexes.

摘要

本文报道了一系列低价铟(In(I))配合物的合成、表征和计算分析,这些配合物具有双(亚胺基)吡啶骨架{Ar'N = CPh}(2)(NC(5)H(3))。通过对配合物[{Ar'N = CPh}(2)(NC(5)H(3))]In(+)(OTf)(-)(1-3)的光谱和晶体学研究,探索了配位位点周围亚胺取代基上芳基的逐步空间位阻还原(Ar' = 2,5-(t)Bu(2)C(6)H(3),2,6-异丙基(2)C(6)H(3),2,6-(CH(2)CH(2))(2)C(6)H(3))。化合物 1-3 表现出较长的 In-N 和 In-OTf 距离,表明配位作用较弱或不存在。当使用 Ar' = 2,6-(CH(3))(2)C(6)H(3)的配体时,得到了一个 In(III)双(亚胺基)吡啶配合物[2,6-Me(2)C(6)H(3)N = CPh}(2)(NC(5)H(3))]In(OTf)(2)Cl 4,其中配位的配体、氯离子和三氟甲磺酸根离子。对铟阳离子与配体之间相互作用的计算分析(轨道占据、键序和能量分解分析)表明,In(I)阳离子与配体之间只有最小的共价相互作用。尽管该配合物具有三个 N 供体中心,但双(亚胺基)吡啶配体对金属的供体作用很小。深入的电子结构分析表明,化合物稳定性与 In(I)5s 孤对电子对阳离子最高占据分子轨道(HOMO)的贡献减少有关。这种效应源于金属与配体之间非键轨道相互作用,在空间拥挤的环境中更为显著。这一发现可能有助于设计新型低价配合物。

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