Li Elise Y, Cheng Yi-Ming, Hsu Cheng-Chih, Chou Pi-Tai, Lee Gene-Hsiang, Lin I-Hui, Chi Yun, Liu Chao-Shiuan
Department of Chemistry and Instrumentation Center, National Taiwan University, Taipei 106, Taiwan.
Inorg Chem. 2006 Oct 2;45(20):8041-51. doi: 10.1021/ic060066g.
In addition to the metal-centered dd transition that is widely accepted as a dominant radiationless decay channel, other factors may also play important roles in governing the loss of phosphorescence efficiency for heavy-transition-metal complexes. To conduct our investigation, we synthesized two dicarbonylruthenium complexes with formulas [Ru(CO)2(BQ)2] (1) and [Ru(CO)2(DBQ)2] (2), for which the cyclometalated ligands BQ and DBQ denote benzo[h]quinoline and dibenzo[f,h]quinoxaline, respectively. Replacing one CO ligand with a P donor ligand such as PPh2Me and PPhMe2 caused one cyclometalated ligand to undergo a 180 degrees rotation around the central metal atom, giving highly luminous metal complexes [Ru(CO)L(BQ)2] and [Ru(CO)L(DBQ)2], where L = PPh2Me and PPhMe2 (3-6), with emission peaks lambda(max) in the range of 571-656 nm measured in the fluid state at room temperature. It is notable that the S0-T1 energy gap for both 1 and 2 is much higher than that of 3-6, but the corresponding phosphorescent spectral intensity is much weaker. Using these cyclometalated Ru metal complexes as a prototype, our experimental results and theoretical analysis draw attention to the fact that, for complexes 1 and 2, the weaker spin-orbit coupling present within these molecules reduces the T1-S0 interaction, from which the thermally activated radiationless deactivation may take place. This, in combination with the much smaller 3MLCT contribution than that observed in 3-6, rationalizes the lack of room-temperature emission for complexes 1 and 2.
除了被广泛认为是主要无辐射衰变通道的以金属为中心的dd跃迁外,其他因素在控制重过渡金属配合物磷光效率损失方面也可能起重要作用。为了进行我们的研究,我们合成了两种二羰基钌配合物,化学式分别为[Ru(CO)2(BQ)2](1)和[Ru(CO)2(DBQ)2](2),其中环金属化配体BQ和DBQ分别表示苯并[h]喹啉和二苯并[f,h]喹喔啉。用诸如PPh2Me和PPhMe2的P供体配体取代一个CO配体,会使一个环金属化配体围绕中心金属原子发生180度旋转,得到高发光金属配合物[Ru(CO)L(BQ)2]和[Ru(CO)L(DBQ)2],其中L = PPh2Me和PPhMe2(3 - 6),在室温下流体状态下测得的发射峰λ(max)在571 - 656 nm范围内。值得注意的是,1和2的S0 - T1能隙比3 - 6的高得多,但相应的磷光光谱强度却弱得多。以这些环金属化钌金属配合物为原型,我们的实验结果和理论分析表明,对于配合物1和2,这些分子中较弱的自旋 - 轨道耦合降低了T1 - S0相互作用,由此可能发生热激活无辐射失活。这与比在3 - 6中观察到的小得多的3MLCT贡献相结合,解释了配合物1和2在室温下缺乏发射的原因。