Mara Michael W, Phelan Brian T, Xie Zhu-Lin, Kim Tae Wu, Hsu Darren J, Liu Xiaolin, Valentine Andrew J S, Kim Pyosang, Li Xiaosong, Adachi Shin-Ichi, Katayama Tetsuo, Mulfort Karen L, Chen Lin X
Chemical Sciences and Engineering Division, Argonne National Laboratory Lemont Illinois 60437 USA
Department of Chemistry, Northwestern University Evanston Illinois 60208 USA
Chem Sci. 2022 Jan 21;13(6):1715-1724. doi: 10.1039/d1sc05034f. eCollection 2022 Feb 9.
In photosynthetic systems employing multiple transition metal centers, the properties of charge-transfer states are tuned by the coupling between metal centers. Here, we use ultrafast optical and X-ray spectroscopies to elucidate the effects of metal-metal interactions in a bimetallic tetrapyridophenazine-bridged Os(ii)/Cu(i) complex. Despite having an appropriate driving force for Os-to-Cu hole transfer in the Os(ii) moiety excited state, no such charge transfer was observed. However, excited-state coupling between the metal centers is present, evidenced by variations in the Os MLCT lifetime depending on the identity of the opposite metal center. This coupling results in concerted coherent vibrations appearing in the relaxation kinetics of the MLCT states for both Cu and Os centers. These vibrations are dominated by metal-ligand contraction at the Cu/Os centers, which are in-phase and linked through the conjugated bridging ligand. This study shows how vibronic coupling between transition metal centers affects the ultrafast dynamics in bridged, multi-metallic systems from the earliest times after photoexcitation to excited-state decay, presenting avenues for tuning charge-transfer states through judicious choice of metal/ligand groups.
在采用多个过渡金属中心的光合系统中,电荷转移态的性质通过金属中心之间的耦合来调节。在此,我们使用超快光学和X射线光谱学来阐明双金属四吡啶菲嗪桥连的Os(ii)/Cu(i)配合物中金属-金属相互作用的影响。尽管在Os(ii)部分激发态下存在从Os到Cu空穴转移的适当驱动力,但未观察到这种电荷转移。然而,金属中心之间存在激发态耦合,这由取决于相反金属中心身份的Os MLCT寿命变化所证明。这种耦合导致在Cu和Os中心的MLCT态的弛豫动力学中出现协同相干振动。这些振动主要由Cu/Os中心处的金属-配体收缩主导,它们是同相的,并通过共轭桥连配体相连。这项研究展示了过渡金属中心之间的振动耦合如何影响从光激发后最早时刻到激发态衰变的桥连多金属系统中的超快动力学,为通过明智选择金属/配体基团来调节电荷转移态提供了途径。