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Cooperative effect of water molecules in the self-catalyzed neutral hydrolysis of isocyanic acid: A comprehensive theoretical study

  • Xi-Guang Wei
  • , Xiao-Ming Sun
  • , Xiao-Peng Wu
  • , Song Geng
  • , Yi Ren
  • , Ning-Bew Wong
  • , Wai-Kee Li

    Research output: Journal Publications and ReviewsRGC 21 - Publication in refereed journalpeer-review

    Abstract

    The detailed reaction mechanism for the water-assisted hydrolysis of isocyanic acid, HNCO + (n + 1) H 2O → CO 2 + NH 3 + nH 2O (n = 0-6), taking place in the gas phase, has been investigated. All structures were optimized and characterized at the MP2/6-31 + G*level of theory, and then re-optimized at MP2/6-311++G**. The seven explicit water molecules participating in the hydrolysis can be divided into two groups, one directly involved in the proton relay, and the other located in the vicinity of the substrate playing the cooperative role by engaging in hydrogen-bonding to HN = C = O. Two possible reaction pathways, the addition of water molecule across the C = N bond or across the C = O bond, are discussed, and the former is proved to be more favorable energetically. Our calculations suggest that, in the most kinetically favorable pathway for the titled hydrolysis, three water molecules are directly participating in the hydrogen transfer via an eight-membered cyclic transition state, while the other four water molecules catalyze the hydrolysis of HN = C = O by forming three eight-membered cooperative loops near the substrate. This strain-free hydrogen-bond network leads to the best estimated rate-determining activation energy of 24.9 kJ mol -1 at 600 K, in excellent agreement with the gas-phase kinetic experimental result, 25.8 kJ mol -1. © 2010 Springer-Verlag.
    Original languageEnglish
    Pages (from-to)2069-2082
    JournalJournal of Molecular Modeling
    Volume17
    Issue number8
    DOIs
    Publication statusPublished - Aug 2011

    Research Keywords

    • Cooperative effect
    • Isocyanic acid
    • Self-catalyzed neutral hydrolysis
    • Strain-free hydrogen-bond network

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