TY - JOUR
T1 - Reaction mechanism of the gas-phase pyrolysis of N – Acetylthiourea and N, N’–diacetylthiourea
T2 - A theoretical study based in density functional theory
AU - Mendoza, Ivan
AU - Luis Paz, José
AU - González-Paz, Lenin A.
AU - Márquez, Edgar A.
AU - Vera-Villalobos, Joan
AU - Mora, José R.
AU - Alvarado, Ysaias J.
AU - Cordova-Sintjago, Tania
AU - Loroño G., Marcos A.
N1 - Publisher Copyright:
© 2022 Elsevier B.V.
PY - 2022/6
Y1 - 2022/6
N2 - In the present study, we propose a reaction mechanism for the decomposition of N -Acetylthiourea and N, N '-Diacetylthiourea using density functional quantum chemical calculations. For both reactions the level of theory that gave us the better agreement between theory and experiment was MPW1PW91/6-311G (d, p). Thermodynamic and kinetic parameters were evaluated at 600 K and 1 atm. For N -Acetylthiourea decomposition reaction, the products are ketene and thiourea, while for are N, N '-Diacetylthiourea, the product are ketene and N–Acetylthiourea. Our calculations suggest that the mechanism proceeds stepwise, where the rate-determining step is promoted by an intramolecular nucleophilic attack of the sulfur atom to the carbonyl carbon in the acetyl group. The kinetics of these reactions is influenced by the electron-withdrawing effect of the acetyl group. Population analysis shows that the mechanism is predominantly synchronous as demonstrated by the high values of the Wiberg synchronicity index. A non-covalent interactions study was also carried out in each stage of the reaction, as well as the analysis of the binding forces of the structures was followed by the independent gradient model (IGM) and its descriptor δg.
AB - In the present study, we propose a reaction mechanism for the decomposition of N -Acetylthiourea and N, N '-Diacetylthiourea using density functional quantum chemical calculations. For both reactions the level of theory that gave us the better agreement between theory and experiment was MPW1PW91/6-311G (d, p). Thermodynamic and kinetic parameters were evaluated at 600 K and 1 atm. For N -Acetylthiourea decomposition reaction, the products are ketene and thiourea, while for are N, N '-Diacetylthiourea, the product are ketene and N–Acetylthiourea. Our calculations suggest that the mechanism proceeds stepwise, where the rate-determining step is promoted by an intramolecular nucleophilic attack of the sulfur atom to the carbonyl carbon in the acetyl group. The kinetics of these reactions is influenced by the electron-withdrawing effect of the acetyl group. Population analysis shows that the mechanism is predominantly synchronous as demonstrated by the high values of the Wiberg synchronicity index. A non-covalent interactions study was also carried out in each stage of the reaction, as well as the analysis of the binding forces of the structures was followed by the independent gradient model (IGM) and its descriptor δg.
KW - Independent Gradient Model
KW - Non-covalent interactions
KW - Theoretical calculation
KW - Wiberg bond index
UR - http://www.scopus.com/inward/record.url?scp=85128478792&partnerID=8YFLogxK
U2 - 10.1016/j.comptc.2022.113702
DO - 10.1016/j.comptc.2022.113702
M3 - Artículo
AN - SCOPUS:85128478792
SN - 2210-271X
VL - 1212
JO - Computational and Theoretical Chemistry
JF - Computational and Theoretical Chemistry
M1 - 113702
ER -