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迈向突显光催化剂光学暗位点处的超快电子转移动力学

Toward Highlighting the Ultrafast Electron Transfer Dynamics at the Optically Dark Sites of Photocatalysts.

作者信息

Canton Sophie E, Zhang Xiaoyi, Zhang Jianxin, van Driel Tim B, Kjaer Kasper S, Haldrup Kristoffer, Chabera Pavel, Harlang Tobias, Suarez-Alcantara Karina, Liu Yizhu, Pérez Jorge, Bordage Amélie, Pápai Mátyás, Vankó György, Jennings Guy, Kurtz Charles A, Rovezzi Mauro, Glatzel Pieter, Smolentsev Grigory, Uhlig Jens, Dohn Asmus O, Christensen Morten, Galler Andreas, Gawelda Wojciech, Bressler Christian, Lemke Henrik T, Møller Klaus B, Nielsen Martin M, Lomoth Reiner, Wärnmark Kenneth, Sundström Villy

机构信息

†Department of Synchrotron Radiation Instrumentation, P.O. Box 118, Lund University, 22100 Lund, Sweden.

‡X-ray Sciences Division, Argonne National Laboratory, 9700 South Cass Avenue, Argonne, Illinois 60439, United States.

出版信息

J Phys Chem Lett. 2013 Jun 6;4(11):1972-6. doi: 10.1021/jz401016h. Epub 2013 May 28.

Abstract

Building a detailed understanding of the structure-function relationship is a crucial step in the optimization of molecular photocatalysts employed in water splitting schemes. The optically dark nature of their active sites usually prevents a complete mapping of the photoinduced dynamics. In this work, transient X-ray absorption spectroscopy highlights the electronic and geometric changes that affect such a center in a bimetallic model complex. Upon selective excitation of the ruthenium chromophore, the cobalt moiety is reduced through intramolecular electron transfer and undergoes a spin flip accompanied by an average bond elongation of 0.20 ± 0.03 Å. The analysis is supported by simulations based on density functional theory structures (B3LYP*/TZVP) and FEFF 9.0 multiple scattering calculations. More generally, these results exemplify the large potential of the technique for tracking elusive intermediates that impart unique functionalities in photochemical devices.

摘要

深入了解结构-功能关系是优化用于水分解方案的分子光催化剂的关键一步。其活性位点的光学暗性质通常会阻碍对光致动力学的完整映射。在这项工作中,瞬态X射线吸收光谱突出了影响双金属模型配合物中此类中心的电子和几何变化。在选择性激发钌发色团后,钴部分通过分子内电子转移被还原,并发生自旋翻转,同时平均键长伸长0.20±0.03 Å。该分析得到了基于密度泛函理论结构(B3LYP*/TZVP)和FEFF 9.0多重散射计算的模拟的支持。更广泛地说,这些结果例证了该技术在追踪赋予光化学器件独特功能的难以捉摸的中间体方面的巨大潜力。

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