机制(生物学)
热分解
分子动力学
分解
化学
化学物理
计算化学
物理
有机化学
量子力学
作者
Liefeng Shou,Wenbo Bi,Teng Zhang,Hongliang Wang,Zhongqi Wang,Jun Chen,Wenjun Zhu
标识
DOI:10.1021/acs.jpca.5c01858
摘要
The prolonged and widespread use of 2,4,6-trinitrotoluene (TNT, C7H5N3O6) has prompted in-depth investigations into its thermal decomposition mechanism. Although considerable research has been conducted on the thermodynamic properties of TNT and other polynitro organic compounds, their thermal stability remains a critical challenge in engineering applications. This study systematically investigates the sequential reaction mechanism of TNT thermal decomposition through first-principles molecular dynamics (FPMD) simulations, revealing three distinct stages: (1) initial solid-phase decomposition, (2) radical generation and carbon cluster formation, and (3) stabilization of final gaseous products, with 157 intermediate species identified. Systematic analysis of functional group evolution revealed three dominant reaction pathways: (i) methyl oxidation-carboxylation, (ii) nitro elimination, and (iii) dimer-mediated methyl elimination. Notably, we observed that nitro-to-nitrito isomerization (C-NO2 → C-ONO) occurs as a result of the continued oxidation of the benzene ring after C-NO2 bond cleavage. Kinetic and thermodynamic analyses showed that the direct attack of the oxygen atom on the aromatic ring in path b exhibited the best kinetic advantage in the functional group elimination reaction, while the choice of the initial oxidation site determined the overall decomposition rate.
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