Mai Tam V-T, Duong Minh V, Nguyen Hieu T, Lin Kuang C, Huynh Lam K
Institute for Computational Science and Technology , SBI Building, Quang Trung Software City, Tan Chanh Hiep Ward, District 12, Ho Chi Minh City, Vietnam.
Department of Mechanical and Electromechanical Engineering, National Sun Yat-Sen University , Kaohsiung, 80424, Taiwan.
J Phys Chem A. 2017 Apr 27;121(16):3028-3036. doi: 10.1021/acs.jpca.7b00015. Epub 2017 Apr 14.
An integrated deterministic and stochastic model within the master equation/Rice-Ramsperger-Kassel-Marcus (ME/RRKM) framework was first used to characterize temperature- and pressure-dependent behaviors of thermal decomposition of acetic anhydride in a wide range of conditions (i.e., 300-1500 K and 0.001-100 atm). Particularly, using potential energy surface and molecular properties obtained from high-level electronic structure calculations at CCSD(T)/CBS, macroscopic thermodynamic properties and rate coefficients of the title reaction were derived with corrections for hindered internal rotation and tunneling treatments. Being in excellent agreement with the scattered experimental data, the results from deterministic and stochastic frameworks confirmed and complemented each other to reveal that the main decomposition pathway proceeds via a 6-membered-ring transition state with the 0 K barrier of 35.2 kcal·mol. This observation was further understood and confirmed by the sensitivity analysis on the time-resolved species profiles and the derived rate coefficients with respect to the ab initio barriers. Such an agreement suggests the integrated model can be confidently used for a wide range of conditions as a powerful postfacto and predictive tool in detailed chemical kinetic modeling and simulation for the title reaction and thus can be extended to complex chemical reactions.
在主方程/赖斯-拉姆施佩格-卡斯尔-马库斯(ME/RRKM)框架内的一个综合确定性和随机性模型,首次被用于描述在广泛条件下(即300 - 1500 K和0.001 - 100 atm)乙酸酐热分解的温度和压力依赖性行为。特别是,利用从CCSD(T)/CBS高水平电子结构计算获得的势能面和分子性质,通过对受阻内旋转和隧穿处理的校正,推导出了标题反应的宏观热力学性质和速率系数。确定性和随机性框架的结果与分散的实验数据高度吻合,相互印证和补充,揭示出主要分解途径通过一个六元环过渡态进行,其0 K势垒为35.2 kcal·mol。通过对时间分辨物种分布和相对于从头算势垒导出的速率系数的敏感性分析,进一步理解和证实了这一观察结果。这种一致性表明,该综合模型可以作为一种强大的事后和预测工具,在标题反应的详细化学动力学建模和模拟中,在广泛条件下被可靠地使用,因此可以扩展到复杂化学反应。