Time-resolved photoelectron diffraction imaging of methanol photodissociation involving molecular hydrogen ejection

Kazuki Yoshikawa, Manabu Kanno*, Hao Xue, Naoki Kishimoto*, Soki Goto, Fukiko Ota, Yoshiaki Tamura, Florian Trinter*, Kilian Fehre, Leon Kaiser, Jonathan Stindl, Dimitrios Tsitsonis, Markus Schöffler, Reinhard Dörner, Rebecca Boll, Benjamin Erk, Tommaso Mazza, Terence Mullins, Daniel E. Rivas, Philipp SchmidtSergey Usenko, Michael Meyer, Enliang Wang, Daniel Rolles, Artem Rudenko, Edwin Kukk, Till Jahnke, Sergio Díaz-Tendero*, Fernando Martín, Keisuke Hatada*, Kiyoshi Ueda*

*この論文の責任著者

研究成果: ジャーナルへの寄稿学術論文査読

1 被引用数 (Scopus)

抄録

Imaging ultrafast atomic and molecular hydrogen motion with femtosecond time resolution is a challenge for ultrafast spectroscopy due to the low mass and small scattering cross section of the moving neutral hydrogen atoms and molecules. Here, we propose time- and momentum-resolved photoelectron diffraction (TMR-PED) as a way to overcome limitations of existing methodologies and illustrate its performance using a prototype molecular dissociation process involving the sequential ejection of a neutral hydrogen molecule and a proton from the methanol dication. By combining state-of-the-art molecular dynamics and electron-scattering methods, we show that TMR-PED allows for direct imaging of hydrogen atoms in action. More specifically, the fingerprint of hydrogen dynamics reflects the time evolution of polarization-averaged molecular-frame photoelectron angular distributions (PA-MFPADs) as would be recorded in X-ray pump/X-ray probe experiments with few-femtosecond resolution. We present the results of two precursor experiments that support the feasibility of this approach.

本文言語英語
ページ(範囲)25118-25130
ページ数13
ジャーナルPhysical Chemistry Chemical Physics
26
38
DOI
出版ステータス出版済み - 2024/08/23

ASJC Scopus 主題領域

  • 物理学および天文学一般
  • 物理化学および理論化学

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