Wu Xuyang, Wang Hongbao, Jiao Chenglong, Zhao Benbo, Sun Shixiong, Luo Yunjun
School of Environmental and Safety Engineering, North University of China, Taiyuan 030051, China.
School of Chemistry and Chemical Engineering, North University of China, Taiyuan 030051, China.
Polymers (Basel). 2025 Jul 21;17(14):1994. doi: 10.3390/polym17141994.
Al-based nanocomposite energetic materials have broad application prospects in explosives and propellants, owing to their excellent energy release efficiency. However, their insufficient reliability, poor stability, and difficulty of formation limit their practical application. This study employed self-assembly using a hydrophilic polymer polyvinylpyrrolidone (PVP) together with nano-aluminum powder (Al), copper oxide (CuO), and ammonium perchlorate (AP) to obtain high-strength and high-activity composite micrometer-sized microspheres. The influence of PVP concentration on the mechanical behavior of Al/AP composite microspheres was systematically investigated, and Al was replaced with ultrasonically dispersed Al/CuO to explore the mechanism of action of PVP in the system and the catalytic behavior of CuO. PVP significantly enhanced the interfacial bonding strength. The Al/AP/5%PVP microspheres achieved a strength of 8.4 MPa under 40% compressive strain, representing a 365% increase relative to Al/AP. The Al/CuO/AP/5%PVP microspheres achieved a strength of 10.2 MPa, representing a 309% increase relative to Al/CuO. The mechanical properties of the composite microspheres were improved by more than threefold, and their thermal reactivities were also higher. This study provides a new method for the controlled preparation of high-strength, high-activity, micrometer-sized energetic microspheres. These materials are expected to be applied in composite solid propellants to enhance their combustion efficiency.
基于铝的纳米复合含能材料因其优异的能量释放效率在炸药和推进剂方面具有广阔的应用前景。然而,它们可靠性不足、稳定性差以及成型困难限制了其实际应用。本研究采用亲水性聚合物聚乙烯吡咯烷酮(PVP)与纳米铝粉(Al)、氧化铜(CuO)和高氯酸铵(AP)进行自组装,以获得高强度和高活性的复合微米级微球。系统研究了PVP浓度对Al/AP复合微球力学行为的影响,并用超声分散的Al/CuO替代Al,以探究PVP在体系中的作用机制以及CuO的催化行为。PVP显著提高了界面结合强度。Al/AP/5%PVP微球在40%压缩应变下的强度达到8.4 MPa,相对于Al/AP提高了365%。Al/CuO/AP/5%PVP微球的强度达到10.2 MPa,相对于Al/CuO提高了309%。复合微球的力学性能提高了三倍多,其热反应活性也更高。本研究为高强度、高活性微米级含能微球的可控制备提供了一种新方法。这些材料有望应用于复合固体推进剂以提高其燃烧效率。