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π-堆积吸引力与静电排斥力:三吡啶并[3,2-a:2',3'-c:3'',2''-h]吩嗪桥连的Ru(ii)/Au(iii)配合物中的竞争性超分子相互作用

π-Stacking attraction vs. electrostatic repulsion: competing supramolecular interactions in a tpphz-bridged Ru(ii)/Au(iii) complex.

作者信息

Sorsche Dieter, Schaub Markus, Heinemann Frank W, Habermehl Johannes, Kuhri Susanne, Guldi Dirk, Guthmuller Julien, Rau Sven

机构信息

Institute for Inorganic Chemistry I, Ulm University, Albert-Einstein-Allee 11, D-89081 Ulm, Germany.

Institute of Inorganic and General Chemistry, Egerlandstr. 1, D-91058 Erlangen, Germany.

出版信息

Dalton Trans. 2016 Aug 9;45(32):12846-53. doi: 10.1039/c6dt01643j.

Abstract

The synthesis and characterization of a mixed metal ruthenium(ii)/gold(iii) complex bridged by tetrapyridophenazine (tpphz) are described. It is isostructural and isoelectronic to the well-known photocatalysts with palladium(ii) or platinum(ii). Concentration dependent (1)H-NMR spectroscopy and XRD studies show that the electrostatic repulsion between the gold(iii) moieties exceeds the attractive π-stacking interaction. Theoretical calculations based on the new structural data confirm an increased positive charge on the bridging ligand as well as significantly altered orbital symmetry as compared to the previously investigated palladium(ii) complex. This is the first example of a tpphz ruthenium(ii) complex where π-stacking is completely inhibited. The detailed investigation of the solid-state structure showed for the first time in bimetallic tpphz bridged complexes no significant torsion within the bridging ligand itself. Although catalytic performance for proton reduction by gold(iii) is naturally not observed, its photochemical decomposition in colloidal gold particles could be shown by TEM and DLS.

摘要

描述了一种由四吡啶并菲嗪(tpphz)桥联的混合金属钌(II)/金(III)配合物的合成与表征。它与具有钯(II)或铂(II)的著名光催化剂具有同构和等电子性。浓度依赖性的(1)H-NMR光谱和XRD研究表明,金(III)部分之间的静电排斥超过了有吸引力的π-堆积相互作用。基于新结构数据的理论计算证实,与先前研究的钯(II)配合物相比,桥联配体上的正电荷增加,轨道对称性也发生了显著变化。这是tpphz钌(II)配合物中π-堆积完全被抑制的第一个例子。对固态结构的详细研究首次表明,在双金属tpphz桥联配合物中,桥联配体本身没有明显的扭转。尽管自然未观察到金(III)对质子还原的催化性能,但通过TEM和DLS可以证明其在胶体金颗粒中的光化学分解。

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