Institute of Functional Material Chemistry, Faculty of Chemistry, Northeast Normal University, Changchun, 130024 Jilin, People's Republic of China.
Dalton Trans. 2013 Aug 21;42(31):11056-65. doi: 10.1039/c3dt50358e.
Herein we designed and synthesized a series of cationic iridium(III) complexes with a phenylbenzoimidazole-based cyclometalated ligand, containing different numbers of carbazole moieties from zero to three (complexes 1-4). The photophysical and electrochemical properties of this series have been systematically investigated. The complexes exhibit strong luminescence in both solution and in neat films, as well as excellent redox reversibility. Introducing carbazole groups into the complexes is found to lead to substantially enhanced photoluminescence quantum efficiency in the neat film, but has little effect on the emitting color and excited-state characteristics as supported by density functional theory (DFT) results. DFT calculations also suggest that functionalized complexes 2-4 reveal better hole-transporting properties than 1. More importantly, all complexes effectively reduce the degradation reaction to some extent in metal-centered (³MC) excited-states, demonstrating their stability. Further studies indicate that restriction of opening of the structures in the ³MC state is caused by the unique molecular conformation of the phenylbenzoimidazole ligand, which is first demonstrated here in cationic iridium(III) complexes without intramolecular π-π stacking. These results presented here would provide valuable information for designing and synthesizing highly efficient and stable cationic iridium(III) complexes suitable for the optical devices.
在此,我们设计并合成了一系列含有苯并咪唑环金属配体的阳离子铱(III)配合物,其中包含从零到三个咔唑部分(配合物 1-4)。我们系统地研究了这一系列的光物理和电化学性质。该系列配合物在溶液和纯膜中均表现出强发光,并且具有出色的氧化还原可逆性。向配合物中引入咔唑基团被发现会导致纯膜中磷光量子效率大大提高,但正如密度泛函理论(DFT)结果所支持的那样,对发射颜色和激发态特性几乎没有影响。DFT 计算还表明,功能化配合物 2-4 比 1 具有更好的空穴传输性能。更重要的是,所有配合物在金属中心(³MC)激发态下都能在一定程度上有效降低降解反应,从而证明其稳定性。进一步的研究表明,在 ³MC 状态下结构的打开受到苯并咪唑配体独特分子构象的限制,这在没有分子内 π-π 堆积的阳离子铱(III)配合物中首次得到证明。这些结果为设计和合成适用于光学器件的高效稳定阳离子铱(III)配合物提供了有价值的信息。