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通过同步超快X射线散射和光谱法寻找电子激发态势能面之间的交叉点。

Finding intersections between electronic excited state potential energy surfaces with simultaneous ultrafast X-ray scattering and spectroscopy.

作者信息

Kjær Kasper S, Van Driel Tim B, Harlang Tobias C B, Kunnus Kristjan, Biasin Elisa, Ledbetter Kathryn, Hartsock Robert W, Reinhard Marco E, Koroidov Sergey, Li Lin, Laursen Mads G, Hansen Frederik B, Vester Peter, Christensen Morten, Haldrup Kristoffer, Nielsen Martin M, Dohn Asmus O, Pápai Mátyás I, Møller Klaus B, Chabera Pavel, Liu Yizhu, Tatsuno Hideyuki, Timm Cornelia, Jarenmark Martin, Uhlig Jens, Sundstöm Villy, Wärnmark Kenneth, Persson Petter, Németh Zoltán, Szemes Dorottya Sárosiné, Bajnóczi Éva, Vankó György, Alonso-Mori Roberto, Glownia James M, Nelson Silke, Sikorski Marcin, Sokaras Dimosthenis, Canton Sophie E, Lemke Henrik T, Gaffney Kelly J

机构信息

PULSE Institute , SLAC National Accelerator Laboratory , Stanford University , Menlo Park , California 94025 , USA . Email:

Department of Physics , Technical University of Denmark , DK-2800 , Lyngby , Denmark.

出版信息

Chem Sci. 2019 Apr 22;10(22):5749-5760. doi: 10.1039/c8sc04023k. eCollection 2019 Jun 14.

Abstract

Light-driven molecular reactions are dictated by the excited state potential energy landscape, depending critically on the location of conical intersections and intersystem crossing points between potential surfaces where non-adiabatic effects govern transition probabilities between distinct electronic states. While ultrafast studies have provided significant insight into electronic excited state reaction dynamics, experimental approaches for identifying and characterizing intersections and seams between electronic states remain highly system dependent. Here we show that for 3d transition metal systems simultaneously recorded X-ray diffuse scattering and X-ray emission spectroscopy at sub-70 femtosecond time-resolution provide a solid experimental foundation for determining the mechanistic details of excited state reactions. In modeling the mechanistic information retrieved from such experiments, it becomes possible to identify the dominant trajectory followed during the excited state cascade and to determine the relevant loci of intersections between states. We illustrate our approach by explicitly mapping parts of the potential energy landscape dictating the light driven low-to-high spin-state transition (spin crossover) of [Fe(2,2'-bipyridine)], where the strongly coupled nuclear and electronic dynamics have been a source of interest and controversy. We anticipate that simultaneous X-ray diffuse scattering and X-ray emission spectroscopy will provide a valuable approach for mapping the reactive trajectories of light-triggered molecular systems involving 3d transition metals.

摘要

光驱动分子反应由激发态势能面决定,这主要取决于锥形交叉点和势能面之间的系间窜越点的位置,在这些位置非绝热效应控制着不同电子态之间的跃迁概率。虽然超快研究已经为电子激发态反应动力学提供了重要见解,但识别和表征电子态之间交叉点和交叉缝的实验方法仍然高度依赖于具体系统。在此我们表明,对于3d过渡金属体系,以亚70飞秒的时间分辨率同时记录X射线漫散射和X射线发射光谱,为确定激发态反应的机理细节提供了坚实的实验基础。在对从此类实验中获取的机理信息进行建模时,就有可能识别激发态级联过程中遵循的主导轨迹,并确定态间交叉的相关位点。我们通过明确绘制决定[Fe(2,2'-联吡啶)]光驱动低自旋态到高自旋态转变(自旋交叉)的部分势能面来说明我们的方法,其中强耦合的核动力学和电子动力学一直是人们感兴趣和存在争议的来源。我们预计,同时进行X射线漫散射和X射线发射光谱将为绘制涉及3d过渡金属的光触发分子体系的反应轨迹提供一种有价值的方法。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/e0c4/6568243/33fd7f0e8273/c8sc04023k-f1.jpg

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