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Theoretical study of the O(3P) + HBr reaction: potential energy surfaces, knetics and dynamics

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Author(s):
Antonio Gustavo Sampaio de Oliveira Filho
Total Authors: 1
Document type: Doctoral Thesis
Press: São Paulo.
Institution: Universidade de São Paulo (USP). Conjunto das Químicas (IQ e FCF) (CQ/DBDCQ)
Defense date:
Examining board members:
Fernando Rei Ornellas; Itamar Borges Junior; Ataualpa Albert Carmo Braga; João Pedro Braga; Rogério Custódio
Advisor: Fernando Rei Ornellas
Abstract

In this work, the O(3P) + HBr → OH + Br reaction, which is relevant to atmospheric chemistry, specially for the catalytic ozone depletion, was studied using high-level ab initio potential energy surfaces. We constructed surfaces for the 3A\" and 3A\' electronic states, based on the many-body expansion, with the two-body potentials adjusted by the switched-MLJ function and the three-body potentials interpolated using the RKHS method. The ab initio points were calculated at the MRCISD+Q/CBS+SO level of theory. The main features of the 3A\" are the presence of two van der Waals minima, at the entrance and exit channels, and a transition state with a barrier height of 5.01 kcal mol-1. The 3A\' PES has a linear transition state at 6.45 kcal mol-1. We obtained the enthalpy of reaction, at 0 K, of -15.7 kcal mol-1, in close agreement with the experimental value of -15.14 kcal mol-1. Rate constants, in the temperature range from 200 to 1000 K, were calculated using the variational transition state theory with contributions of multidimensional tunneling (ICVT/µOMT) and also a quantum reactive scattering approach (QM/JS). Their values are in fair agreement with the experimental data in the literature in the whole temperature range available: from 221 to 554 K for the O + HBr reaction, and from 295 to 419 K for the O + DBr reaction. At 298 K, the calculated rate constants, in cm3 molecule-1 s-1, for the O + HBr reaction are 3.62·10-14 (ICVT/µOMT) and 3.35·10-14 (QM/JS); and the experimental value is 3.78·10-14. The quality of these results reinforces our confidence in the procedures and approximations used, leading to the possibility of high-level characterization of a variety of gas phase reactions. (AU)

FAPESP's process: 09/06555-9 - Atmospheric reactions from ozone and sulfur cycles: an energetic and kinetic study on [h, Xn, Y] (X = o, s; Y = CL, br, i; n = 1-3) potential energy surfaces
Grantee:Antonio Gustavo Sampaio de Oliveira Filho
Support Opportunities: Scholarships in Brazil - Doctorate (Direct)