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简便调控黄色到近红外发光的铂(II)希夫碱配合物:光物理、电化学、电致化学发光及理论计算。

Facile tuning of luminescent platinum(II) Schiff base complexes from yellow to near-infrared: photophysics, electrochemistry, electrochemiluminescence and theoretical calculations.

机构信息

Department of Chemistry, La Trobe Institute for Molecular Science, La Trobe University, Melbourne, Victoria 3086 (Australia).

出版信息

Chemistry. 2013 Nov 18;19(47):15907-17. doi: 10.1002/chem.201302339. Epub 2013 Oct 2.

Abstract

The photophysical and related properties of platinum(II) Schiff base complexes can be finely and predictably tuned over a wide range of wavelengths by small and easily implemented changes to ligand structure. A series of such complexes, differing only in the number and positioning of methoxy substituents on the phenoxy ring, were synthesised and their photophysical, electrochemical and electrochemiluminescent (ECL) properties investigated. Theoretical calculations were performed in order to gain further insight into the relationship between structure and properties in these materials. By positioning methoxy groups para and/or ortho to either the imine or the oxygen group on the ligand, electron density could be directed selectively toward the LUMO or HOMO as required. This allowed the emission colour (both photoluminescent and electrochemiluminescent) to be tuned over a wide range between 587 and 739 nm. The variation in orbital energies was also manifested in the positions of the absorption bands and the redox properties of the complexes, as well as in the NMR shifts for the uncoordinated ligands. All reported complexes displayed intense electrochemiluminescence (ECL), which could be initiated either by annihilation or co-reactant pathways. The relationship between the electrochemical and photophysical properties and the efficiency of the ECL is discussed. For two of the complexes solid-state ECL could be generated from electrodeposited layers of the complex.

摘要

铂(II)席夫碱配合物的光物理和相关性质可以通过对配体结构进行微小且易于实施的改变,在很宽的波长范围内进行精细且可预测的调节。我们合成了一系列这样的配合物,它们仅在苯氧基环上甲氧基取代基的数量和位置上有所不同,并研究了它们的光物理、电化学和电致化学发光(ECL)性质。为了进一步深入了解这些材料中结构与性质之间的关系,我们进行了理论计算。通过将甲氧基对位和/或邻位取代配体上的亚胺或氧基团,可以有选择性地将电子密度引导至 LUMO 或 HOMO,具体取决于需要。这使得发射颜色(无论是光致发光还是电致化学发光)可以在 587nm 到 739nm 之间的宽范围内进行调节。轨道能量的变化也表现在配合物的吸收带位置和氧化还原性质以及未配位配体的 NMR 位移上。所有报道的配合物都显示出强烈的电致化学发光(ECL),可以通过湮灭或共反应物途径引发。讨论了电化学和光物理性质与 ECL 效率之间的关系。对于其中两个配合物,可以从配合物的电沉积层中产生固态 ECL。

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