Ma Yinhua, Lv Meiheng, Shang Fangjian, Zhang Chaoyang, Liu Jianyong, Zhou Panwang
Department of Physics, Dalian Maritime University, Dalian 116026, China.
College of Science, Shenyang University of Chemical Technology, Shenyang 110142, P.R. China.
J Phys Chem A. 2022 Mar 17;126(10):1666-1673. doi: 10.1021/acs.jpca.1c10900. Epub 2022 Mar 8.
Interpreting the initial decomposition mechanism is important for evaluating the thermal stability of explosives. In this study, we theoretically investigated the initial thermal decomposition reactions for two typical energetic materials, FOX-7 and RDX, in both the gas phase and crystal phase. Single molecular decomposition pathways in the gas phase are calculated using the density functional theory (DFT) method, and the crystal phase reactions are simulated through the MM/DFT-based ONIOM method. The calculation results indicate that the crystal environment has a significant influence on the initial thermal decomposition mechanism of FOX-7 and RDX. The cage effect induced by the crystal environment greatly confines molecular mobility and diffusion, rendering the generated small molecules to react with the remaining fragment and yield new decomposition channels compared with the gas phase condition. The crystal packing structures and intermolecular interactions (hydrogen bonds/π-π stacking) significantly increase the reaction barriers of FOX-7 and RDX, leading to the crystal phase reactions being more difficult to occur than in the gas phase. Since the practical application of explosives is mostly in the crystal state, it is important to consider the environmental effects on the initial decomposition reactions. The same insight can also be relevant for other energetic materials.
解读初始分解机理对于评估炸药的热稳定性至关重要。在本研究中,我们从理论上研究了两种典型含能材料FOX - 7和RDX在气相和晶相中的初始热分解反应。使用密度泛函理论(DFT)方法计算气相中的单分子分解途径,并通过基于MM/DFT的ONIOM方法模拟晶相反应。计算结果表明,晶体环境对FOX - 7和RDX的初始热分解机理有显著影响。晶体环境引起的笼效应极大地限制了分子的迁移和扩散,与气相条件相比,使得生成的小分子与剩余碎片发生反应并产生新的分解通道。晶体堆积结构和分子间相互作用(氢键/π - π堆积)显著增加了FOX - 7和RDX的反应势垒,导致晶相反应比气相反应更难发生。由于炸药的实际应用大多处于晶体状态,考虑环境对初始分解反应的影响很重要。同样的见解也适用于其他含能材料。