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首页> 外文期刊>Journal of Physical Organic Chemistry >Structural, electronic, and optical properties of oligoquinolines for light-emitting diodes
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Structural, electronic, and optical properties of oligoquinolines for light-emitting diodes

机译:发光二极管用寡喹啉的结构,电子和光学性质

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The purpose of this work is to provide an in-depth investigation of the electronic and optical properties of a series of n-type conjugated oligomers, including 4-phenyl-6-(4-phenylquinolin-6-yl)quinoline (81), 6,6'-bis(2,4-diphenylquinoline) WPM, 6,6'-bis(2-(4-tert-butylphenyl)-4-phenylquinoline) (BtBPQ), 6,6'-bis(2-p-biphenyl)-4-phenylquinoline) (82PPQ), and 4-(6-(2-(4-aminophenyl)-4-phenylquinolin-6-yl)-4-phenylquinolin-2-yl)be nzenamine (BNPPQ). The geometric and electronic structures of the oligomers in the ground state were investigated using density functional theory (DFT) and the ob initio HF, whereas the lowest singlet excited states were optimized with ab initio CIS. To assign the absorption and emission peaks observed in the experiment, we computed the energies of the lowest singlet excited states with time-dependent (TD) DFT (TD-DFT). All DFT calculations were performed using the B3LYP functional and the 6-31G basis set. The results show that the HOMOs, LUMOs, energies gaps, ionization potentials and electron affinities for each molecular are significantly affected by varying the aryl substituents, which favor the hole injection into OLEDs. The absorption and emission spectra exhibit red shifts to some extent [the absorption spectra: 335.85 (81)< 370.63 (B1PPQ)<376.77 (BtBPQ)<388.67 (B2PPQ)<412.93nm (BNPPQ); the emission spectra: 391.48 (B1)<430.11 (B1PPQ) < 435.86 (BtBPQ) < 444.57 (B2PPQ) < 463.28nm (BNPPQ)]. The radiative lifetimes (T) of each oligomers are calculated as well. Because of introducing the cooperation with the electron donators such as the amidocyanogen in the common 4-phenyl-6-(4-phenylquinolin-6-yl)quinoline core for BNPPQ, which results in improving the hole-creating ability. Copyright (c) 2008 John Wiley & Sons, Ltd.
机译:这项工作的目的是深入研究一系列n型共轭低聚物,包括4-苯基-6-(4-苯基喹啉-6-基)喹啉(81)的电子和光学性质, 6,6'-双(2,4-二苯基喹啉)WPM,6,6'-双(2-(4-叔丁基苯基)-4-苯基喹啉)(BtBPQ),6,6'-双(2-p -联苯基)-4-苯基喹啉)(82PPQ)和4-(6-(2-(4-(氨基氨基苯基)-4-苯基喹啉-6-基)-4-苯基喹啉-2-基)苯胺(BNPPQ)。使用密度泛函理论(DFT)和从头算HF研究了低聚物在基态的几何和电子结构,而从头算CIS则优化了最低的单重态激发态。为了分配在实验中观察到的吸收和发射峰,我们计算了具有时间依赖性(TD)DFT(TD-DFT)的最低单重态激发态的能量。所有DFT计算都是使用B3LYP功能和6-31G基础集进行的。结果表明,每个分子的HOMO,LUMO,能隙,电离电势和电子亲和力均受芳基取代基变化的影响,这有利于向OLED中注入空穴。吸收光谱和发射光谱显示出一定程度的红移[吸收光谱:335.85(81)<370.63(B1PPQ)<376.77(BtBPQ)<388.67(B2PPQ)<412.93nm(BNPPQ);发射光谱:391.48(B1)<430.11(B1PPQ)<435.86(BtBPQ)<444.57(B2PPQ)<463.28nm(BNPPQ)]。还计算了每种低聚物的辐射寿命(T)。由于在BNPPQ的普通4-苯基-6-(4-苯基喹啉-6-基)喹啉芯中引入了与电子给体(如酰胺基氰基)的配合,从而提高了空穴形成能力。版权所有(c)2008 John Wiley&Sons,Ltd.

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