Quantum dynamics study of energy requirement on reactivity for the HBr + OH reaction with a negative-energy barrier

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Abstract

A time-dependent, quantum reaction dynamics approach in full dimensional, six degrees of freedom was carried out to study the energy requirement on reactivity for the HBr + OH reaction with an early, negative energy barrier. The calculation shows both the HBr and OH vibrational excitations enhance the reactivity. However, even this reaction has a negative energy barrier, the calculation shows not all forms of energy are equally effective in promoting the reactivity. On the basis of equal amount of total energy, the vibrational energies of both the HBr and OH are more effective in enhancing the reactivity than the translational energy, whereas the rotational excitations of both the HBr and OH hinder the reactivity. The rate constants were also calculated for the temperature range between 5 to 500 K. The quantal rate constants have a better slope agreement with the experimental data than quasi-classical trajectory results.

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Wang, Y., Li, Y., & Wang, D. (2017). Quantum dynamics study of energy requirement on reactivity for the HBr + OH reaction with a negative-energy barrier. Scientific Reports, 7. https://doi.org/10.1038/srep40314

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