Su Jiaxin, Hu Yan, Zhou Bin, Ye Yinghua, Shen Ruiqi
School of Chemistry and Chemical Engineering, Nanjing University of Science and Technology, Nanjing 210094, China.
Micro-Nano Energetic Devices Key Laboratory, Ministry of Industry and Information Technology, Nanjing 210094, China.
Molecules. 2022 Nov 6;27(21):7614. doi: 10.3390/molecules27217614.
Metastable intermixed composites (MICs) have received increasing attention in the field of energy materials in recent years due to their high energy and good combustion performance. The exploration of ways of improving their potential release of heat is still underway. In this study, Al-CuO/graphene oxide (GO) nanocomposites were prepared using a combination of the self-assembly and in-suit synthesis methods. The formulation and experimental conditions were also optimized to maximize the exothermic heat. The DSC analysis shows that the addition of the GO made a significant contribution to the exothermic effect of the nanothermite. Compared with the Al-CuO nanothermite, the exothermic heat of the Al-CuO/GO nanocomposites increase by 306.9-1166.3 J/g and the peak temperatures dropped by 7.9-26.4 °C with different GO content. The reaction mechanism of the nanocomposite was investigated using a DSC and thermal reaction kinetics analysis. It was found that, compared with typical thermite reactions, the addition of the GO changed the reaction pathway of the nanothermite. The reaction products included CuAlO. Moreover, the combustion properties of nanocomposite were investigated. This work reveals the unique mechanism of GO in thermite reactions, which may promote the application of carbon materials in nanothermite.
近年来,亚稳态混合复合材料(MICs)因其高能量和良好的燃烧性能而在能量材料领域受到越来越多的关注。提高其潜在热释放方式的探索仍在进行中。在本研究中,采用自组装和原位合成相结合的方法制备了Al-CuO/氧化石墨烯(GO)纳米复合材料。还对配方和实验条件进行了优化,以最大限度地提高放热热量。DSC分析表明,GO的加入对纳米铝热剂的放热效应有显著贡献。与Al-CuO纳米铝热剂相比,不同GO含量的Al-CuO/GO纳米复合材料的放热热量增加了306.9 - 1166.3 J/g,峰值温度下降了7.9 - 26.4℃。利用DSC和热反应动力学分析研究了纳米复合材料的反应机理。结果发现,与典型的铝热反应相比,GO的加入改变了纳米铝热剂的反应途径。反应产物包括CuAlO。此外,还研究了纳米复合材料的燃烧性能。这项工作揭示了GO在铝热反应中的独特机理,这可能会促进碳材料在纳米铝热剂中的应用。