Amsterdam Center for Multiscale Modeling and Van't Hoff Institute for Molecular Sciences , University of Amsterdam , Science Park 904 , 1098XH Amsterdam , The Netherlands.
Inorg Chem. 2018 Nov 5;57(21):13063-13066. doi: 10.1021/acs.inorgchem.8b00619. Epub 2018 May 7.
By advanced molecular dynamics simulations, we show that for a highly active ruthenium-based water oxidation catalyst the dangling carboxylate group of the catalyst plays an important role in the crucial O-O bond formation step. The interplay of the flexible group and solvent molecules facilitates two possible pathways: a direct pathway with a single solvent water molecule or a mediated pathway involving two solvent water molecules, which have similar activation barriers. Our results provide an example for which a realistic molecular dynamics approach, incorporating an explicit description of the solvent, is required to reveal the full complexity of an important catalytic reaction in aqueous solvent.
通过高级分子动力学模拟,我们表明对于一种高活性的基于钌的水氧化催化剂,催化剂的悬垂羧酸盐基团在关键的 O-O 键形成步骤中起着重要作用。柔性基团和溶剂分子的相互作用促进了两种可能的途径:一种是具有单个溶剂水分子的直接途径,另一种是涉及两个溶剂水分子的中介途径,它们具有相似的活化势垒。我们的结果提供了一个例子,即需要采用一种现实的分子动力学方法,包括对溶剂的明确描述,才能揭示水溶剂中重要催化反应的全部复杂性。