TY - JOUR
T1 - A comprehensive theoretical study on the hydrolysis of carbonyl sulfide in the neutral water
AU - Deng, Chao
AU - Li, Qiang-Gen
AU - Ren, Yi
AU - Wong, Ning-Bew
AU - Chu, San-Yan
AU - Zhu, Hua-Jie
PY - 2008/2
Y1 - 2008/2
N2 - The detailed hydration mechanism of carbonyl sulfide (COS) in the presence of up to five water molecules has been investigated at the level of HF and MP2 with the basis set of 6-311++G(d, p). The nucleophilic addition of water molecule occurs in a concerted way across the C=S bond of COS rather than across the C=O bond. This preferential reaction mechanism could be rationalized in terms of Fukui functions for the both nucleophilic and electrophilic attacks. The activation barriers, ΔH298 ‡ rate-determining steps of one up to five-water hydrolyses of COS across the C=S bond are 199.4, 144.4, 123.0, 115.5, and 107.9 kJ/mol in the gas phase, respectively. The most favorable hydrolysis path of COS involves a sort of eight-membered ring transition structure and other two water molecules near to the nonreactive oxygen atom but not involved in the proton transfer, suggesting that the hydrolysis of COS can be significantly mediated by the water molecule(s) and the cooperative effects of the water molecule(s) in the nonreactive region. The catalytic effect of water molecule(s) due to the alleviation of ring strain in the proton transfer process may result from the synergistic effects of rehybridization and charge reorganization from the precoordination complex to the rate-determining transition state structure induced by water molecule. The studies on the effect of temperature on the hydrolysis of COS show that the higher temperature is unfavorable for the hydrolysis of COS. PCM solvation mod_______els almost do not modify the calculated energy barriers in a significant way. © 2007 Wiley Periodicals, Inc.
AB - The detailed hydration mechanism of carbonyl sulfide (COS) in the presence of up to five water molecules has been investigated at the level of HF and MP2 with the basis set of 6-311++G(d, p). The nucleophilic addition of water molecule occurs in a concerted way across the C=S bond of COS rather than across the C=O bond. This preferential reaction mechanism could be rationalized in terms of Fukui functions for the both nucleophilic and electrophilic attacks. The activation barriers, ΔH298 ‡ rate-determining steps of one up to five-water hydrolyses of COS across the C=S bond are 199.4, 144.4, 123.0, 115.5, and 107.9 kJ/mol in the gas phase, respectively. The most favorable hydrolysis path of COS involves a sort of eight-membered ring transition structure and other two water molecules near to the nonreactive oxygen atom but not involved in the proton transfer, suggesting that the hydrolysis of COS can be significantly mediated by the water molecule(s) and the cooperative effects of the water molecule(s) in the nonreactive region. The catalytic effect of water molecule(s) due to the alleviation of ring strain in the proton transfer process may result from the synergistic effects of rehybridization and charge reorganization from the precoordination complex to the rate-determining transition state structure induced by water molecule. The studies on the effect of temperature on the hydrolysis of COS show that the higher temperature is unfavorable for the hydrolysis of COS. PCM solvation mod_______els almost do not modify the calculated energy barriers in a significant way. © 2007 Wiley Periodicals, Inc.
KW - Carbonyl sulfide
KW - Hydrolysis mechanism
KW - Natural population analysis
KW - Solvent effects
KW - Temperature effects
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U2 - 10.1002/jcc.20806
DO - 10.1002/jcc.20806
M3 - RGC 21 - Publication in refereed journal
C2 - 17663440
SN - 0192-8651
VL - 29
SP - 466
EP - 480
JO - Journal of Computational Chemistry
JF - Journal of Computational Chemistry
IS - 3
ER -