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Tracking Conical Intersections with Nonlinear X-ray Raman Spectroscopy

Deependra Jadoun Markus Kowalewski

Deependra Jadoun, Markus Kowalewski. 2022: Tracking Conical Intersections with Nonlinear X-ray Raman Spectroscopy. 超快科学, 2022(6). doi: 10.34133/ultrafastscience.0003
引用本文: Deependra Jadoun, Markus Kowalewski. 2022: Tracking Conical Intersections with Nonlinear X-ray Raman Spectroscopy. 超快科学, 2022(6). doi: 10.34133/ultrafastscience.0003
Deependra Jadoun, Markus Kowalewski, . 2022: Tracking Conical Intersections with Nonlinear X-ray Raman Spectroscopy. Ultrafast Science, 2022(6). doi: 10.34133/ultrafastscience.0003
Citation: Deependra Jadoun, Markus Kowalewski, . 2022: Tracking Conical Intersections with Nonlinear X-ray Raman Spectroscopy. Ultrafast Science, 2022(6). doi: 10.34133/ultrafastscience.0003

Tracking Conical Intersections with Nonlinear X-ray Raman Spectroscopy

doi: 10.34133/ultrafastscience.0003
基金项目: 

Support from the Swedish Research Council (grant no. VR 2018-05346) is acknowledged. This project has receivedfunding from the European Union’s Horizon 2020 research and innovation program under the Marie Skłodowska-Curie grant agreement no. 860553. The authors declare no competing interests.

Tracking Conical Intersections with Nonlinear X-ray Raman Spectroscopy

Funds: 

Support from the Swedish Research Council (grant no. VR 2018-05346) is acknowledged. This project has receivedfunding from the European Union’s Horizon 2020 research and innovation program under the Marie Skłodowska-Curie grant agreement no. 860553. The authors declare no competing interests.

  • 摘要: Conical intersections are formed when 2 or more electronic states become degenerate and give rise to ultrafast nonadiabatic processes such as radiation-less decay channels and geometric phase effects. The branching of nuclear wave packets near a conical intersection creates a coherent superposition of electronic states, which carries information about the energy difference of the involved states. X-ray Raman techniques have been proposed to observe the coherent superposition of the electronic states and to monitor the evolving electronic state separation. However,these techniques rely on the coherence generated as the wave packet passes through the conical intersection, and the electronic energy gap before the wave packet passes through the conical intersection is not tracked. In this paper, we theoretically demonstrate how a nonlinear Raman detection scheme can be used to gain further insight into the nonadiabatic dynamics in the vicinity of the conical intersection.We employ a combination of a resonant visible/infrared pulse and an off-resonant x-ray Raman probe to map the electronic state separation around the conical intersection. We demonstrate that this technique can achieve high contrast and is able to selectively probe the narrow electronic state separation around the conical intersection.
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出版历程
  • 收稿日期:  2022-07-11
  • 修回日期:  2022-10-30
  • 刊出日期:  2022-12-15

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