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Research Progress

Dynamical Resonances Accessible Only by Reagent Vibrational Excitation in the F+HD→HF+D Reaction

Dec 24, 2013

As important roles in combustion chemistry, atmosphere chemistry and astrochemistry, a significant portion of reactant molecules are populated in vibrationally excited levels. It is a strong thrust for molecular vibration to overcome the reaction barrier. Until now, it is still little known the way for the vibrational excitation in the reacting molecules to change the reactive process. During the history of molecular reaction dynamics, the reaction of fluorine atom with hydrogen molecule plays the most important part in benchmark systems.  

In the past few years, this reaction was intensively explored by the DICP (Dalian Institute of Chemical Physics) team. Dynamical resonances, the breakdown of Born–Oppenheimer approximation and partial wave resonances were observed in this reaction. Further researches on the mechanism were elucidated as well. In these works, the hydrogen molecule was populated in the vibrationally ground state. An interesting question is: if the reacting hydrogen molecule is vibrationally excited, how will this benchmark reaction change? Recently, a DICP team led by Prof. YANG Xueming and Prof. ZHANG Donghui made major breakthrough in elementary reaction dynamics. 

The researchers built a single-longitudinal-mode optical parametrical oscillator system, and developed a highly efficient technique for preparation of an intense beam of vibrationally excited hydrogen molecules (J. Phys. Chem. Lett. 2013, 4, 368-371). Based on this technique, a high-resolution crossed-molecular-beam experiment on the vibrationally excited HD (v = 1) + F → HF + D reaction was successfully conducted at DICP. Two broad peaks for backward-scattered HF (v'= 2 & 3) products clearly emerge at collision energies of 0.21 kcal/mol and 0.62 kcal/mol from differential cross sections measured over a range of energies. These features are attributed to excited Feshbach resonances, which is trapped in the peculiar HF (v' = 4)–D vibrationally adiabatic potential in the post-barrier region. Quantum dynamics calculations on a highly accurate potential energy surface show that these resonance states correlate to the HD (v'= 1) state in the entrance channel, thus only can be accessed by the vibrationally excited HD reagent. 

This work clearly reveals that initial vibrational excitation not only provides energy required for the reaction, but also gives rise to a proper adiabatic pathway that accesses the dynamical resonances in the high-energy region. The vibrationally excited molecular reactions provide a unique context for probing dynamical resonances in chemical reactions when the vibrationally adiabatic potential. These reactions are correlated to the vibrationally excited state of the reagent in the entrance channel. This work was supported by the National Natural Science Foundation of China, the Ministry of Science and Technology of China, and the Chinese Academy of Sciences. The paper was published in Science Magazine (Science , 342, 1499).

(Left) TOF spectra of the D atom product from the F +HD→HF + D reaction at a collision energy of 0.23 kcal/mol. (Upper right) Theoretical (solid lines) and experimental (solid circles and squares) DCS for the backward-scattering HF product. (Lower right) Schematic diagram showing the resonance-mediated reaction mechanism for the F + HD → HF + D reaction. (Image by DICP)

 

Contact:
Dr. XIAO Chunlei
Email: chunleixiao@dicp.ac.cn
 
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