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首页> 外文期刊>Physical chemistry chemical physics: PCCP >Photophysical properties of structural isomers of homoleptic Ir-complexes derived from xylenyl-substituted N-heterocyclic carbene ligands
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Photophysical properties of structural isomers of homoleptic Ir-complexes derived from xylenyl-substituted N-heterocyclic carbene ligands

机译:二氧乙烯基 - 取代的正杂环甲苯配体衍生的经络IR络合物结构异构体的光学性质

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The phosphorescence properties of fac-Ir(pmp)(3), mer-Ir(pmp)(3), fac-Ir(dmpmp)(3) and mer-Ir(dmpmp)(3) (where pmp = 3-methyl-1-phenyl-2,3-dihydro-1H-imidazo[4,5-b]pyridine and dmpmp = 1-(2',6'-dimethylbiphenyl-2-yl)-3-methyl-2,3-dihydro-1H-imidazo[4,5-b]pyridine) in CH2Cl2 were investigated. At 77 K, the fac-isomers showed blue emission with a vibronic structure, while the mer-isomers showed less structured emissions. At 300 K, all complexes showed broad and markedly red-shifted emission spectra compared to those at 77 K. The quantum yields of the Ir(dmpmp)(3) isomers were very low, and their emission lifetimes were very short compared to those of Ir(pmp)(3). In order to understand the large differences between the photodynamic properties of Ir(pmp)(3) and Ir(dmpmp)(3), we performed femtosecond time-resolved transient absorption (TA) spectroscopic measurements. The TA spectra of Ir(dmpmp)(3) were almost the same as those of Ir(pmp)(3) at a short delay time. However, Ir(dmpmp)(3) showed a new broad TA band at around 720 nm with increasing delay time. The rise time of this band was ca. 10 ps for both isomers, and this may be attributed to the geometrical change in the excited state, which is associated with the steric hindrance of the bulky dimethylphenyl substituent. Actually, Ir(dmpmp)(3) showed a strong rigidochromic shift in the emission spectra with varying temperature. To understand the molecular orbitals and the energy levels, theoretical calculations were performed using density functional theory. As a result, structural displacement takes place accompanied by the fast migration of localization of excited states via intraligand charge transfer.
机译:FAC-IR(PMP)(3),MEL-IR(PMP)(3),FAC-IR(DMPMP)(3)和MEL-IR(DMPMP)(3)(其中PMP = 3-甲基)的磷光特性(其中-1-苯基-2,3-二氢-1H-咪唑[4,5-B]吡啶和DMPMP = 1-(2',6'-二甲基双苯基-2-基)-3-甲基-2,3-二氢研究了CH 2 Cl 2中的1H-咪唑[4,5-B]吡啶。在77 k时,FAC-异构体显示出具有振动结构的蓝色发射,而MER-异构体显示出较少的结构性排放。在300 k时,与77k时的那些,所有复合物显示出宽且显着的红移发射光谱。IR(DMPMP)(3)异构体的量子产率非常低,与它们相比,它们的排放寿命非常短IR(PMP)(3)。为了了解IR(PMP)(3)和IR(DMPMP)(3)的光动力动力学性质之间的较大差异,我们执行了FemtoSecond时间分辨的瞬态吸收(Ta)光谱测量。 IR(DMPMP)(3)的TA光谱与短延迟时间几乎与IR(PMP)(3)的TA光谱相同。然而,IR(DMPMP)(3)在720nm左右显示出新的宽TA带,随着延迟时间增加。这支乐队的上升时间是加利福尼亚州。对于两种异构体10 ps,这可能归因于激发态的几何变化,其与庞大二甲基苯基取代基的空间阻断有关。实际上,IR(DMPMP)(3)在发射光谱中显示出具有不同温度的发射光谱的强刚度偏移。为了了解分子轨道和能级,使用密度函数理论进行理论计算。结果,伴随着通过Intraligand电荷转移来伴随激发状态的快速迁移的结构位移。

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