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首页> 外文期刊>Theoretical chemistry accounts >A theoretical analysis of the effects of electron-withdrawing substitutions on electronic structures and phosphorescent efficiency of a series of Ir(III) complexes with 2-phenylpyridine ligands
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A theoretical analysis of the effects of electron-withdrawing substitutions on electronic structures and phosphorescent efficiency of a series of Ir(III) complexes with 2-phenylpyridine ligands

机译:吸电子取代对一系列具有2-苯基吡啶配体的Ir(III)配合物的电子结构和磷光效率的影响的理论分析

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摘要

A density functional theory and time-dependent density functional theory approaches were used to understand the structure-property relationships of a series of Ir(III) complexes Ir(x-NHC)(y-ppy)2 [where NHC = 2,3-dihydro-1-methyl-3-phenyl-1H-imidazole, ppy = 2-phenylpyridine, x = Cl, y = H (1a); x = Cl, y = Cl (1a-Cl); x = Cl, y = F (1a-F); x = Cl, y = CN (1a-CN); x = Cl, y = CF3 (1a-CF3); x = F, y = CF3 (2-CF3)]. The investigations on the electronic structures in the ground and lowest triplet excited states, the frontier molecular orbitals, the absorption and emission spectra, as well as charge injection and transport of these Ir complexes provided a good understanding of the structure-property relationships. Furthermore, the full details of the metal character in the phosphorescent spectra(~3MLCT %), triplet energy (ET1), the singlet-triplet splitting energy (ΔE_(S1-Tn)), ~3MLCT-~3MC energy gap, as well as d orbitals splitting revealed that quantum yield was effectively enhanced by introducing CN and CF3 groups on the ppy ligands. The designed complexes 1-CN, 1-CF3, and 2-CF3 are expected to be highly efficient phosphorescent materials in organic light-emitting diodes.
机译:使用密度泛函理论和时变密度泛函理论方法来理解一系列Ir(III)配合物Ir(x-NHC)(y-ppy)2 [其中NHC = 2,3-二氢-1-甲基-3-苯基-1H-咪唑,ppy = 2-苯基吡啶,x = Cl,y = H(1a); x = Cl,y = Cl(1a-Cl); x = Cl,y = F(1a-F); x = Cl,y = CN(1a-CN); x = Cl,y = CF3(1a-CF3); x = F,y = CF3(2-CF3)]。对基态和最低三重态激发态的电子结构,前沿分子轨道,吸收和发射光谱以及这些Ir配合物的电荷注入和输运的研究提供了对结构-性质关系的良好理解。此外,还详细介绍了磷光光谱中的金属特征(〜3MLCT%),三重态能量(ET1),单重态-三重态分裂能(ΔE_(S1-Tn)),〜3MLCT-〜3MC能隙。 d轨道分裂表明,通过在ppy配体上引入CN和CF3基团可以有效提高量子产率。设计的配合物1-CN,1-CF3和2-CF3有望成为有机发光二极管中的高效磷光材料。

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