Shi Anran, Zheng Han, Chen Zhiyi, Zhang Wei, Zhou Xiang, Rossi Carole, Shen Ruiqi, Ye Yinghua
School of Chemistry and Chemical Engineering, Nanjing University of Science and Technology, Nanjing 210094, China.
Micro-Nano Energetic Devices Key Laboratory of MIIT, Nanjing 210094, China.
Molecules. 2022 Jun 2;27(11):3586. doi: 10.3390/molecules27113586.
The effect of the interface layer on energy release in nanoenergetic composite films is important and challenging for the utilization of energy. Nano Al/CuO composite films with different modulation periods were prepared by magnetron sputtering and tested by differential scanning calorimetry. With the increase in the modulation period of the nano Al/CuO energetic composite films, the interface layer contained in the energetic composite film decreased meaningfully, increasing the total heat release meaningfully. Ab initio molecular dynamics (AIMD) simulation were carried out to study the preparation process changes and related properties of the nano Al/CuO energetic composite films under different configurations at 400 K. The results showed that the diffusion of oxygen atoms first occurred at the upper and lower interfaces of CuO and Al, forming AlO and CuAlO. The two-modulation-period structure changed more obviously than the one-modulation-period structure, and the reaction was faster. The propagation rate and reaction duration of the front end of the diffusion reaction fronts at the upper and lower interfaces were different. The Helmholtz free energy loss of the nano Al/CuO composite films with a two-modulation-period configuration was large, and the number of interfacial layers had a great influence on the Helmholtz free energy, which was consistent with the results of the thermal analysis. Current molecular dynamics studies may provide new insights into the nature and characteristics of fast thermite reactions in atomic detail.
界面层对纳米含能复合薄膜能量释放的影响对于能量利用而言既重要又具有挑战性。通过磁控溅射制备了具有不同调制周期的纳米Al/CuO复合薄膜,并采用差示扫描量热法进行测试。随着纳米Al/CuO含能复合薄膜调制周期的增加,含能复合薄膜中所含的界面层显著减少,总热释放显著增加。进行了从头算分子动力学(AIMD)模拟,以研究400 K下不同构型的纳米Al/CuO含能复合薄膜的制备过程变化及相关性质。结果表明,氧原子的扩散首先发生在CuO与Al的上下界面处,形成AlO和CuAlO。双调制周期结构比单调制周期结构变化更明显,反应更快。上下界面处扩散反应前沿前端的传播速率和反应持续时间不同。双调制周期构型的纳米Al/CuO复合薄膜的亥姆霍兹自由能损失较大,界面层数对亥姆霍兹自由能有很大影响,这与热分析结果一致。当前的分子动力学研究可能为快速铝热反应的本质和特征提供原子层面的新见解。