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Feshbach resonances in the F + H2O → HF + OH reaction

Author

Listed:
  • Xiaoren Zhang

    (Chinese Academy of Sciences
    University of Chinese Academy of Sciences)

  • Lulu Li

    (Chinese Academy of Sciences
    University of Science and Technology of China)

  • Jun Chen

    (Xiamen University)

  • Shu Liu

    (Chinese Academy of Sciences)

  • Dong H. Zhang

    (Chinese Academy of Sciences)

Abstract

Transiently trapped quantum states along the reaction coordinate in the transition-state region of a chemical reaction are normally called Feshbach resonances or dynamical resonances. Feshbach resonances trapped in the HF–OH interaction well have been discovered in an earlier photodetchment study of FH2O−; however, it is not clear whether these resonances are accessible by the F + H2O reaction. Here we report an accurate state-to-state quantum dynamics study of the F + H2O → HF + OH reaction on an accurate newly constructed potential energy surface. Pronounced oscillatory structures are observed in the total reaction probabilities, in particular at collision energies below 0.2 eV. Detailed analysis reveals that these oscillating structures originate from the Feshbach resonance states trapped in the hydrogen bond well on the HF(v′ = 2)-OH vibrationally adiabatic potentials, producing mainly HF(v′ = 1) product. Therefore, the resonances observed in the photodetchment study of FH2O− are accessible to the reaction.

Suggested Citation

  • Xiaoren Zhang & Lulu Li & Jun Chen & Shu Liu & Dong H. Zhang, 2020. "Feshbach resonances in the F + H2O → HF + OH reaction," Nature Communications, Nature, vol. 11(1), pages 1-5, December.
  • Handle: RePEc:nat:natcom:v:11:y:2020:i:1:d:10.1038_s41467-019-14097-y
    DOI: 10.1038/s41467-019-14097-y
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