Li Xiangyu, Guerieri Philip, Zhou Wenbo, Huang Chuan, Zachariah Michael R
Department of Chemical and Biomolecular Engineering and Department of Chemistry and Biochemistry, University of Maryland, College Park, Maryland 20742, United States.
ACS Appl Mater Interfaces. 2015 May 6;7(17):9103-9. doi: 10.1021/acsami.5b00891. Epub 2015 Apr 24.
One of the challenges in the use of energetic nanoparticles within a polymer matrix for propellant applications is obtaining high particle loading (high energy density) while maintaining mechanical integrity and reactivity. In this study, we explore a new strategy that utilizes laminate structures. Here, a laminate of alternating layers of aluminum nanoparticle (Al-NPs)/copper oxide nanoparticle (CuO-NPs) thermites in a polyvinylidene fluoride (PVDF) reactive binder, with a spacer layer of PVDF was fabricated by a electrospray layer-by-layer deposition method. The deposited layers containing up to 60 wt % Al-NPs/CuO-NPs thermite are found to be uniform and mechanically flexible. Both the reactive and mechanical properties of laminate significantly outperformed the single-layer structure with the same material composition. These results suggest that deploying a multilayer laminate structure enables the incorporation of high loadings of energetic materials and, in some cases, enhances the reactive properties over the corresponding homogeneous structure. These results imply that an additive manufacturing approach may yield significant advantages in developing a tailored architecture for advanced propulsion systems.
在将含能纳米颗粒用于聚合物基体以制造推进剂的过程中,面临的挑战之一是在保持机械完整性和反应活性的同时,实现高颗粒负载量(高能量密度)。在本研究中,我们探索了一种利用层状结构的新策略。在此,通过电喷雾逐层沉积法制备了一种层状结构,该结构由聚偏氟乙烯(PVDF)反应性粘结剂中的铝纳米颗粒(Al-NPs)/氧化铜纳米颗粒(CuO-NPs)铝热剂交替层与PVDF间隔层组成。发现含有高达60 wt% Al-NPs/CuO-NPs铝热剂的沉积层均匀且具有机械柔韧性。层状结构的反应性能和机械性能均显著优于具有相同材料组成的单层结构。这些结果表明,采用多层层状结构能够加入高负载量的含能材料,并且在某些情况下,相较于相应的均匀结构,还能增强反应性能。这些结果意味着增材制造方法在为先进推进系统开发定制结构方面可能会带来显著优势。