Molecular Movies, Department of Physics, Technical University of Denmark, DK-2800 Kongens Lyngby, Denmark.
LCLS, SLAC National Accelerator Laboratory, Menlo Park, California 94025, USA.
Nat Commun. 2016 Nov 28;7:13678. doi: 10.1038/ncomms13678.
The interactions between the reactive excited state of molecular photocatalysts and surrounding solvent dictate reaction mechanisms and pathways, but are not readily accessible to conventional optical spectroscopic techniques. Here we report an investigation of the structural and solvation dynamics following excitation of a model photocatalytic molecular system [Ir(dimen)], where dimen is para-diisocyanomenthane. The time-dependent structural changes in this model photocatalyst, as well as the changes in the solvation shell structure, have been measured with ultrafast diffuse X-ray scattering and simulated with Born-Oppenheimer Molecular Dynamics. Both methods provide direct access to the solute-solvent pair distribution function, enabling the solvation dynamics around the catalytically active iridium sites to be robustly characterized. Our results provide evidence for the coordination of the iridium atoms by the acetonitrile solvent and demonstrate the viability of using diffuse X-ray scattering at free-electron laser sources for studying the dynamics of photocatalysis.
分子光催化剂的反应激发态与周围溶剂之间的相互作用决定了反应机制和途径,但常规的光学光谱技术不易获得这些信息。在这里,我们报告了对模型光催化分子系统[Ir(dimen)]激发后结构和溶剂化动力学的研究,其中 dimen 是对二异氰基间二甲苯。使用超快漫散射 X 射线散射和 Born-Oppenheimer 分子动力学对该模型光催化剂的时变结构变化以及溶剂化壳结构的变化进行了测量。这两种方法都可以直接访问溶质-溶剂对分布函数,从而能够稳健地表征催化活性铱位点周围的溶剂化动力学。我们的结果为铱原子与乙腈溶剂的配位提供了证据,并证明了在自由电子激光源处使用漫散射 X 射线散射来研究光催化动力学的可行性。