Chemistry Department, Lund University, Lund, Sweden.
J Phys Chem A. 2012 Jan 26;116(3):1041-50. doi: 10.1021/jp207044a. Epub 2012 Jan 17.
Calculated triplet excited state potential energy surfaces are presented for a set of three bis-tridentate Ru(II)-polypyridyl dyes covering a wide range of room temperature excited state lifetimes: Ru(II)(tpy)(2), 250 ps; Ru(II)(bmp)(2), 15 ns; and Ru(II)(dqp)(2), 3 μs (tpy is 2,2':6',2″-terpyridine, bmp is 6-(2-picolyl)-2,2'-bipyridine, and dqp is 2,6-di(quinolin-8-yl)pyridine). The computational results provide a multidimensional view of the (3)MLCT-(3)MC transition for the investigated complexes. Recently reported results of significantly prolonged (3)MLCT excited state lifetimes of bis-tridentate Ru(II)-complexes, for example Ru(II)(dqp)(2), are found to correlate with substantial differences in their triplet excited state multidimensional potential energy surfaces. In addition to identification of low-energy transition paths for (3)MLCT-(3)MC conversion associated with simultaneous elongation of two or more Ru-N bonds for all investigated complexes, the calculations also suggest significant differences in (3)MLCT state volume in the multidimensional reaction coordinate space formed from various combinations of Ru-N bond distance variations. This is proposed to be an important aspect for understanding the large differences in experimentally observed (3)MLCT excited state lifetimes. The results demonstrate the advantage of considering multidimensional potential energy surfaces beyond the Franck-Condon region in order to predict photophysical and photochemical properties of bis-tridentate Ru(II)-polypyridyl dyes and related metal complexes.
计算三重态激发态势能面呈现了一组三种双齿三吡啶钌(II)-多吡啶染料,涵盖了广泛的室温激发态寿命范围:[Ru(II)(tpy)(2)](2+),250 ps;[Ru(II)(bmp)(2)](2+),15 ns;和[Ru(II)(dqp)(2)](2+),3 μs(tpy 是 2,2':6',2″-三联吡啶,bmp 是 6-(2-吡啶基)-2,2'-联吡啶,dqp 是 2,6-二(喹啉-8-基)吡啶)。计算结果为研究复合物的(3)MLCT-(3)MC 跃迁提供了多维视角。最近报道的双齿三吡啶钌(II)-配合物(例如[Ru(II)(dqp)(2)](2+))的(3)MLCT 激发态寿命显著延长的结果被发现与它们三重态激发态多维势能面的显著差异相关。除了确定与所有研究复合物中两个或更多 Ru-N 键同时伸长相关的(3)MLCT-(3)MC 转换的低能跃迁路径外,计算还表明,在由各种 Ru-N 键距离变化组合形成的多维反应坐标空间中,(3)MLCT 态体积存在显著差异。这被认为是理解实验观察到的(3)MLCT 激发态寿命差异的重要方面。结果表明,考虑超越 Franck-Condon 区域的多维势能面在预测双齿三吡啶钌(II)-多吡啶染料和相关金属配合物的光物理和光化学性质方面具有优势。