TY - JOUR
T1 - Ab initio and DFT theoretical studies and rate constants calculation on the reactions O (3P) atoms with HOX (X = Cl, Br)
AU - Wang, Li
AU - Liu, Jing Yao
AU - Li, Ze Sheng
AU - Sun, Chia Chung
PY - 2005/8/5
Y1 - 2005/8/5
N2 - The potential energy surfaces of the reactions O atoms with HOX (X = Cl, Br) are investigated by MPW1K, QCISD, G3(MP2) (single-point) levels. There are two abstraction channels, i.e., hydrogen and halogen (Cl and Br) abstraction channels to form the same products OH + XO (X = Cl and Br). The present theoretical results bring forward different reaction mechanism for HOCl + O, which was presented in the period study. The rate constants are carried out by the improved canonical variational transition state theory (ICVT) over a wide temperature range 200-2000 K. Agreement between the ICVT rate constants and the experimental values is good. Our calculations show that the halogen abstraction channel predominates the reaction over the whole temperature range for both reactions and the rate constants increase with the temperature increasing.
AB - The potential energy surfaces of the reactions O atoms with HOX (X = Cl, Br) are investigated by MPW1K, QCISD, G3(MP2) (single-point) levels. There are two abstraction channels, i.e., hydrogen and halogen (Cl and Br) abstraction channels to form the same products OH + XO (X = Cl and Br). The present theoretical results bring forward different reaction mechanism for HOCl + O, which was presented in the period study. The rate constants are carried out by the improved canonical variational transition state theory (ICVT) over a wide temperature range 200-2000 K. Agreement between the ICVT rate constants and the experimental values is good. Our calculations show that the halogen abstraction channel predominates the reaction over the whole temperature range for both reactions and the rate constants increase with the temperature increasing.
UR - http://www.scopus.com/inward/record.url?scp=22544437897&partnerID=8YFLogxK
U2 - 10.1016/j.cplett.2005.05.071
DO - 10.1016/j.cplett.2005.05.071
M3 - Article
AN - SCOPUS:22544437897
SN - 0009-2614
VL - 411
SP - 225
EP - 232
JO - Chemical Physics Letters
JF - Chemical Physics Letters
IS - 1-3
ER -