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Ultrafast Structural Dynamics of Photoactive Metal Complexes in Solar Hydrogen Generation

机译:太阳能氢气光活性金属配合物超快结构动态

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Photoexcited states of metal complexes are precursors for many important photochemical processes in solution phase which lead to solar hydrogen generation. Therefore, knowing their structures with atomic resolution and sufficient time resolution is crucial in correlating structures with molecular properties. Using x-ray transient absorption (XTA) spectroscopy, transient metal oxidation states, coordination geometry, and atomic rearrangements during photochemical processes can be probed. Such an approach complements with ultrafast optical laser spectroscopy in obtaining kinetics and coherence information among different excited states as well as intra- and intermolecular energy/charge transfer processes associated with solar energy conversion. Excited state structures of transition metal complexes, such as metalloporphyrins in solution, created by photoexcitation have been studied by XTA combined with optical transient absorption spectroscopy. Direct evidences of photoinduced redox reactions and coordination geometry changes as well as electronic configurations of the metals can be observed. These experimental studies are combined with quantum mechanical calculations to rationalize the evolution of the ultrafast excited state pathways with electronic configuration changes that may be responsible for the reactivity of the molecules in solar hydrogen generation. Preliminary time-resolved X-ray absorption near edge structure (XANES) studies on Pt coated TiO_2 nanoparticles during photocatalysis show a significant potential impact of XTA in understanding solar hydrogen production.
机译:金属配合物的光渗出状态是溶液阶段许多重要光化学过程的前体,导致太阳能氢气产生。因此,知道具有原子分辨率和足够的时间分辨率的结构在与分子特性的结构相关性方面是至关重要的。可以探测使用X射线瞬态吸收(XTA)光谱,瞬态金属氧化状态,协调几何形状和光化学过程中的原子重排。这种方法与超快光激光光谱相互补充在不同激发态的动力学和相干信息中,以及与太阳能转换相关的内部分子间能量/电荷转移过程。通过XTA与光学瞬态吸收光谱相结合,研究了通过光透镜产生的溶液中的过渡金属配合物的激发状态结构,例如通过光透镜产生的。可以观察到光诱导的氧化还原反应和协调几何形状的直接证据以及金属的电子配置。这些实验研究与量子力学计算结合,以使超快激发态途径的演化与电子构造变化的演变合理化,这可能对太阳能氢产生的分子的反应性负责。在光催化期间PT涂覆的TiO_2纳米粒子的边缘结构(XANES)研究附近的初步时间分辨X射线吸收显示出XTA在了解太阳氢生产中的显着潜在影响。

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