环丙烷
化学
库仑爆炸
离解(化学)
质子
异构化
雅恩-泰勒效应
分子物理学
化学物理
结晶学
离子
电离
物理
物理化学
核物理学
戒指(化学)
有机化学
生物化学
催化作用
作者
Jiguo Wang,Bowen Dong,Ming Zhang,Yongkai Deng,Xiaopeng Jian,Zheng Li,Yunquan Liu
摘要
The Jahn–Teller (JT) distortion is one of the fundamental processes in molecules and condensed phase matters. For photoionized organic molecules with high symmetry, the JT effect leads to geometric instability in certain electron configurations and thus has a significant effect on the subsequent isomerization and proton migration processes. Utilizing the femtosecond pump–probe Coulomb explosion method, we probe the isomerization dynamics process of a monovalent cyclopropane cation (C3H6+) caused by proton migration and reveal the relationship between proton migration and JT distortion. We found that the C3H6+ cation evolves from the D3h symmetric equilateral triangle geometry either to the acute triangle via two elongated C–C bonds (JT1) or to the obtuse triangle via a single elongated C–C bond (JT2). The JT1 pathway does not involve proton migration, while the JT2 pathway drives proton migration and can be mapped into the indirect dissociation channel of Coulomb explosion. The time-resolved experiment indicates that the delay time between those two JT pathways can be as large as ∼600 fs. After the JT distortion, the cyclopropane cation undergoes a subsequent structural evolution, which brings a greater variety of dissociation channels.
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