Abrahamsson Maria, Lundqvist Maria J, Wolpher Henriette, Johansson Olof, Eriksson Lars, Bergquist Jonas, Rasmussen Torben, Becker Hans-Christian, Hammarström Leif, Norrby Per-Ola, Akermark Björn, Persson Petter
Department of Photochemistry and Molecular Science, Uppsala University, Uppsala, Sweden.
Inorg Chem. 2008 May 5;47(9):3540-8. doi: 10.1021/ic7019457. Epub 2008 Apr 11.
The structural effect on the metal-to-ligand charge transfer (MLCT) excited-state lifetime has been investigated in bis-tridentate Ru(II)-polypyridyl complexes based on the terpyridine-like ligands 6-(2,2'-bipyridyl)methane ( 1) and 2-[6-(2,2'-bipyridyl)]-2-(2-pyridyl)propane ( 2). A homoleptic ([Ru( 2) 2] (2+)) and a heteroleptic complex ([Ru(ttpy)( 2)] (2+)) based on the new ligand 2 have been prepared and their photophysical and structural properties studied experimentally and theoretically and compared to the results for the previously reported [Ru( 1) 2] (2+). The excited-state lifetime of the homoleptic Ru (II) complex with the isopropylene-bridged ligand 2 was found to be 50 times shorter than that of the corresponding homoleptic Ru (II) complex of ligand 1, containing a methylene bridge. A comparison of the ground-state geometries of the two homoleptic complexes shows that steric interactions involving the isopropylene bridges make the coordination to the central Ru (II) ion less octahedral in [Ru( 2) 2] (2+) than in [Ru( 1) 2] (2+). Calculations indicate that the structural differences in these complexes influence their ligand field splittings as well as the relative stabilities of the triplet metal-to-ligand charge transfer ( (3)MLCT) and metal-centered ( (3)MC) excited states. The large difference in measured excited-state lifetimes for the two homoleptic Ru (II) complexes is attributed to a strong influence of steric interactions on the ligand field strength, which in turn affects the activation barriers for thermal conversion from (3)MLCT states to short-lived (3)MC states.
基于类三联吡啶配体6-(2,2'-联吡啶基)甲烷(1)和2-[6-(2,2'-联吡啶基)]-2-(2-吡啶基)丙烷(2),研究了双三齿Ru(II)-多吡啶配合物中结构对金属-配体电荷转移(MLCT)激发态寿命的影响。制备了基于新配体2的同配物(Ru(2)2)和异配物配合物(Ru(ttpy)(2)),并通过实验和理论研究了它们的光物理和结构性质,并与先前报道的Ru(1)2的结果进行了比较。发现含有异丙基桥连配体2的同配Ru(II)配合物的激发态寿命比含有亚甲基桥的相应配体1的同配Ru(II)配合物的激发态寿命短50倍。两种同配配合物基态几何结构的比较表明,涉及异丙基桥的空间相互作用使得Ru(2)2中与中心Ru(II)离子的配位比Ru(1)2中的八面体配位程度更低。计算表明,这些配合物中的结构差异影响了它们的配体场分裂以及三重态金属-配体电荷转移((3)MLCT)和金属中心((3)MC)激发态的相对稳定性。两种同配Ru(II)配合物测得的激发态寿命的巨大差异归因于空间相互作用对配体场强度的强烈影响,这反过来又影响了从(3)MLCT态热转化为短寿命(3)MC态的活化能垒。