Chinese Journal of Chemical Physics, Volume. 33, Issue 5, 649(2020)

Photodissociation Dynamics of AlO at 193 nm using Time-Sliced Ion Velocity Imaging

Fang-fang Li, Yu-jie Ma, Jia-xing Liu, Guan-jun Wang, and Feng-yan Wang*
Figures & Tables(4)
(a) The raw image of Al+ with O\begin{document}$ _2 $\end{document} as carrier gas recorded at 193 nm and (b) nearly a quarter part of the enlarged image, in which the inner ring (region A) has a lower velocity and the angular distribution tends to be isotropic compared to that of the outer region (region B). The polarization direction of the laser is shown in the figure.
Speed distributions of Al+ ions obtained from the integration of images over (a) an entire range of 0\begin{document}$ ^{\circ} $\end{document}-360\begin{document}$ ^{\circ} $\end{document} and (b) the small angular range of 0\begin{document}$ ^{\circ} $\end{document}\begin{document}$ \pm $\end{document}5\begin{document}$ ^{\circ} $\end{document} for a better resolution.
Total kinetic energy distribution of Al/Al++O converted from FIG. 2(b).
Angular distributions of Al+ ions in (a) Al(\begin{document}$ ^2 $\end{document}P\begin{document}$ _ \rm{u} $\end{document})+O(\begin{document}$ ^3 $\end{document}P\begin{document}$ _ \rm{g} $\end{document}) channel and (b) Al+(\begin{document}$ ^1 $\end{document}S\begin{document}$ _ \rm{g} $\end{document})+O(\begin{document}$ ^3 $\end{document}P\begin{document}$ _ \rm{g} $\end{document}) channel obtained from AlO(\begin{document}$ v $\end{document} = 0, 1, and 2), respectively.
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Fang-fang Li, Yu-jie Ma, Jia-xing Liu, Guan-jun Wang, Feng-yan Wang. Photodissociation Dynamics of AlO at 193 nm using Time-Sliced Ion Velocity Imaging[J]. Chinese Journal of Chemical Physics, 2020, 33(5): 649

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Paper Information

Received: Jul. 7, 2020

Accepted: Jul. 30, 2020

Published Online: Apr. 21, 2021

The Author Email: Wang Feng-yan (fengyanwang@fudan.edu.cn)

DOI:10.1063/1674-0068/cjcp2007118

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