Sun Yan, Long Bo, Truhlar Donald G
Department of Physics, Guizhou University, Guiyang 550025, China.
College of Materials Science and Engineering, Guizhou Minzu University, Guiyang 550025, China.
Research (Wash D C). 2023 Jul 10;6:0143. doi: 10.34133/research.0143. eCollection 2023.
The kinetics of Criegee intermediates are important for atmospheric modeling. However, the quantitative kinetics of Criegee intermediates are still very limited, especially for those with hydroxy groups. Here, we calculate rate constants for the unimolecular reaction of -glycolaldehyde oxide [-hydroxyethanal oxide, -(CHOH)CHOO], for its reactions with HO and (HO), and for the reaction of the -(CHOH)CHOO…HO complex with HO. For the highest level of electronic structure, we use W3X-L//CCSD(T)-F12a/cc-pVDZ-F12 for the unimolecular reaction and the reaction with water and W3X-L//DF-CCSD(T)-F12b/jun-cc-pVDZ for the reaction with 2 water molecules. For the dynamics, we use a dual-level strategy that combines conventional transition state theory with the highest level of electronic structure and multistructural canonical variational transition state theory with small-curvature tunneling with a validated density functional for the electronic structure. This dynamical treatment includes high-frequency anharmonicity, torsional anharmonicity, recrossing effects, and tunneling. We find that the unimolecular reaction of -(CHOH)CHOO depends on both temperature and pressure. The calculated results show that -(CHOH)CHOO…HO + HO is the dominant entrance channel, while previous investigations only considered Criegee intermediates + (HO). In addition, we find that the atmospheric lifetime of -(CHOH)CHOO with respect to 2 water molecules is particularly short with a value of 1.71 × 10 s at 0 km, which is about 2 orders of magnitude shorter than those usually assumed for Criegee intermediate reactions with water dimer. We also find that the OH group in -(CHOH)CHOO enhances its reactivity.
克里吉中间体的动力学对于大气建模很重要。然而,克里吉中间体的定量动力学仍然非常有限,尤其是对于那些含有羟基的中间体。在此,我们计算了乙醇醛氧化物[-羟基乙醛氧化物,-(CHOH)CHOO]的单分子反应、其与HO和(HO)的反应以及-(CHOH)CHOO…HO络合物与HO反应的速率常数。对于最高水平的电子结构,我们使用W3X-L//CCSD(T)-F12a/cc-pVDZ-F12来计算单分子反应和与水的反应,使用W3X-L//DF-CCSD(T)-F12b/jun-cc-pVDZ来计算与两个水分子的反应。对于动力学,我们采用了一种双水平策略,将传统过渡态理论与最高水平的电子结构相结合,以及将多结构正则变分过渡态理论与小曲率隧穿相结合,并使用经过验证的密度泛函来处理电子结构。这种动力学处理包括高频非谐性、扭转非谐性、重新穿越效应和隧穿。我们发现-(CHOH)CHOO的单分子反应取决于温度和压力。计算结果表明,-(CHOH)CHOO…HO + HO是主要的入口通道,而先前的研究仅考虑了克里吉中间体+(HO)。此外,我们发现-(CHOH)CHOO与两个水分子反应的大气寿命特别短,在0公里处的值为1.71×10 s,比通常假设的克里吉中间体与水二聚体反应的寿命短约2个数量级。我们还发现-(CHOH)CHOO中的OH基团增强了其反应活性。