Park Hea Jung, Boelke Claire Louise, Cheong Paul Ha-Yeon, Hwang Do-Hoon
Department of Chemistry and Chemistry Institute for Functional Materials, Pusan National University, Busan 46241, Republic of Korea.
Department of Chemistry, Oregon State University, Corvallis, Oregon 97331, United States.
Inorg Chem. 2022 Apr 4;61(13):5178-5183. doi: 10.1021/acs.inorgchem.1c03967. Epub 2022 Mar 23.
Red and near-infrared (NIR) phosphorescent double-decker dinuclear Pt(II) complexes were synthesized, and their structural and spectroscopic properties were characterized. The Pt(II) complexes, which are composed of achiral ligands and are themselves chiral, were shown to exist as racemic mixtures using single-crystal X-ray crystallography. The Pt(II) complexes have different intramolecular Pt-Pt distances that are governed by the electronic characteristics of the component C^N ligands. Specifically, strengthening of π-back-donation between Pt(II) and N atom of the C^N ligand leads to shortening of the Pt-Pt distance. The results of both experimental and computational investigations show that the Pt-Pt distances in the dinuclear Pt(II) complexes significantly influence the band gap energies and corresponding emission wavelengths. Consequently, the uncovered C^N ligand based method to finely control intramolecular Pt-Pt distances in dinuclear Pt(II) complexes can be utilized as a guideline for the design of the double-decker dinuclear Pt(II) complexes with red and NIR tuned phosphorescence.
合成了红色和近红外(NIR)磷光双核Pt(II)配合物,并对其结构和光谱性质进行了表征。由非手性配体组成且自身具有手性的Pt(II)配合物,通过单晶X射线晶体学表明其以外消旋混合物形式存在。Pt(II)配合物具有不同的分子内Pt-Pt距离,这由组分C^N配体的电子特性决定。具体而言,Pt(II)与C^N配体的N原子之间的π-反馈配位增强会导致Pt-Pt距离缩短。实验和计算研究结果均表明,双核Pt(II)配合物中的Pt-Pt距离对带隙能量和相应的发射波长有显著影响。因此,所发现的基于C^N配体精细控制双核Pt(II)配合物分子内Pt-Pt距离的方法,可作为设计具有红色和近红外调谐磷光的双层双核Pt(II)配合物的指导原则。