4.8 Article

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

期刊

CHEMICAL SCIENCE
卷 10, 期 22, 页码 5749-5760

出版社

ROYAL SOC CHEMISTRY
DOI: 10.1039/c8sc04023k

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资金

  1. U.S. Department of Energy, Office of Science, Office of Basic Energy Sciences [DE-AC02-76SF00515]
  2. U.S. Department of Energy, Office of Science, Basic Energy Sciences, Chemical Sciences, Geosciences, and Biosciences Division
  3. Melvin and Joan Lane Stanford Graduate Fellowship
  4. Danish Council for Independent Research [DFF-4002-00272B, DFF-8021-00347B]
  5. Carlsberg Foundation
  6. 'Lendulet' (Momentum) Program of the Hungarian Academy of Sciences [LP2013-59]
  7. Government of Hungary [VEKOP-2.3.2-16-2017-00015]
  8. European Regional Development Fund [VEKOP-2.3.2-16-2017-00015]
  9. European Research Council [ERC-StG-259709]
  10. Hungarian Scientific Research Fund (OTKA) [K 109257]
  11. National Research, Development and Innovation Fund [NKFIH FK 124460]
  12. Bolyai Fellowship of the Hungarian Academy of Sciences
  13. European Union [GINOP-2.3.6-15-2015-00001]
  14. European Regional Development Fund
  15. Knut and Alice Wallenberg Foundation (KAW)
  16. Knut & Alice Wallenberg foundation [KAW 2014.0370]
  17. Icelandic Research Fund [196279-051]

向作者/读者索取更多资源

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)(3)](2+), 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.

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