Yin Yanjun, Dong Yue, Li Mingling, Ma Zili
Engineering Technology Center of Department of Education of Anhui Province, School of Chemistry and Material Engineering, Chaohu University, Chaohu 238024, China.
Hefei National Laboratory for Physical Sciences at the Microscale, University of Science and Technology of China, Hefei 230026, China.
Langmuir. 2022 Mar 1;38(8):2569-2575. doi: 10.1021/acs.langmuir.1c03170. Epub 2022 Feb 17.
Energetic coatings have attracted a great deal of interest with respect to their compatibility and high energy and power density. However, their preparation by effective and inexpensive methods remains a challenge. In this work, electrophoretic deposition was investigated for the deposition of an Al/CuO thermite coating as a typical facile effective and controllable method. Given the poor adhesion of the deposited film and the native inert AlO shell on Al limiting energy output, further treatment was conducted by soaking in a Nafion solution, which not only acted as a fluoropolymer binder but also introduced a strong F oxidizer. It is interesting to note that the adhesion level of Al/CuO films was improved greatly from 1B to 4B, which was attributed to Nafion organic network film formation, like a fishing net covering the loose particles in the film. Combustion and energy release were analyzed using a high-speed camera and a differential scanning calorimeter. A combustion rate of ≤3.3 m/s and a heat release of 2429 J/g for Al/NFs/CuO are far superior to those of pristine Al/CuO (1.3 m/s and 841 J/g, respectively). The results show that the excellent combustion and heat release properties of the energetic film system are facilitated by the good combustion-supporting properties of organic molecules and the increase in the film density after organic treatment. The prepared Al/NFs/CuO film was also employed as ignition material to fire B-KNO explosive successfully. This study provides a new way to prepare organic-inorganic hybrid energetic films, simultaneously altering the energy release and enhancing the adhesive force. In addition, the Al/NFs/CuO coating also showed considerable potential as an ignition material in microignitors.
含能涂层因其兼容性以及高能量和功率密度而备受关注。然而,通过有效且廉价的方法制备它们仍然是一项挑战。在这项工作中,研究了电泳沉积法来沉积Al/CuO铝热剂涂层,这是一种典型的简便、有效且可控的方法。鉴于沉积膜的附着力差以及铝表面天然惰性的AlO壳层限制了能量输出,通过在Nafion溶液中浸泡进行进一步处理,Nafion溶液不仅充当含氟聚合物粘合剂,还引入了强F氧化剂。值得注意的是,Al/CuO薄膜的附着力等级从1B大幅提高到4B,这归因于形成了Nafion有机网络薄膜,就像一张渔网覆盖着薄膜中的松散颗粒。使用高速相机和差示扫描量热仪分析了燃烧和能量释放情况。Al/NFs/CuO的燃烧速率≤3.3 m/s,热释放为2429 J/g,远优于原始Al/CuO(分别为1.3 m/s和841 J/g)。结果表明,有机分子良好的助燃性能以及有机处理后薄膜密度的增加促进了含能薄膜体系优异的燃烧和热释放性能。制备的Al/NFs/CuO薄膜还被用作点火材料,成功点燃了B-KNO炸药。这项研究为制备有机-无机杂化含能薄膜提供了一种新方法,同时改变了能量释放并增强了附着力。此外,Al/NFs/CuO涂层作为微点火器中的点火材料也显示出相当大的潜力。