Guo Xiaogang, Sun Qi, Liang Taotao, Giwa A S
Chongqing Key Laboratory of Inorganic Special Functional Materials, College of Chemistry and Chemical Engineering, Yangtze Normal University, Chongqing 408100, China.
Material Corrosion and Protection Key Laboratory of Sichuan Province, College of Chemistry and Environmental Engineering, Institute of Functional Materials, Sichuan University of Science and Engineering, Zigong 643000, China.
Nanomaterials (Basel). 2020 May 18;10(5):955. doi: 10.3390/nano10050955.
Film-forming techniques and the control of heat release in micro-energetic chips or devices create challenges and bottlenecks for the utilization of energy. In this study, promising nano-Al/MoO metastable intermolecular composite (MIC) chips with an uniform distribution of particles were firstly designed via a convenient and high-efficiency electrophoretic deposition (EPD) technique at room temperature and under ambient pressure conditions. The mixture of isopropanol, polyethyleneimine, and benzoic acid proved to be an optimized dispersing agent for EPD. The kinetics of EPD for oxidants (Al) and reductants (MoO) were systematically investigated, which contributed to adjusting the equivalence ratio of targeted energetic chips after changing the EPD dynamic behaviors of Al and MoO in suspension. In addition, the obtained nano-Al/MoO MIC energetic chips showed excellent heat-release performance with a high heat release of ca. 3340 J/g, and were successfully ignited with a dazzling flame recorded by a high-speed camera. Moreover, the fabrication method here is fully compatible with a micro-electromechanical system (MEMS), which suggests promising potential in designing and developing other MIC energetic chips or devices for micro-ignition/propulsion applications.
成膜技术以及微能量芯片或器件中的热释放控制给能量利用带来了挑战和瓶颈。在本研究中,首先通过简便高效的室温常压电泳沉积(EPD)技术设计出了具有均匀颗粒分布的有前景的纳米铝/三氧化钼亚稳分子间复合材料(MIC)芯片。异丙醇、聚乙烯亚胺和苯甲酸的混合物被证明是用于EPD的优化分散剂。系统研究了氧化剂(铝)和还原剂(三氧化钼)的EPD动力学,这有助于在改变铝和三氧化钼在悬浮液中的EPD动态行为后调整目标能量芯片的当量比。此外,所制备的纳米铝/三氧化钼MIC能量芯片表现出优异的热释放性能,热释放量高达约3340 J/g,并成功被点燃,高速摄像机记录下了耀眼的火焰。而且,此处的制造方法与微机电系统(MEMS)完全兼容,这表明在设计和开发用于微点火/推进应用的其他MIC能量芯片或器件方面具有广阔的潜力。