Dai Ji, Wang Chengai, Wang Yueting, Xu Wei, Xu Jianbing, Shen Yun, Zhang Wei, Ye Yinghua, Shen Ruiqi
Department of Applied Chemistry, School of Chemical Engineering, Nanjing University of Science and Technology, Nanjing 210094, People's Republic of China. Institute of Chemical Materials, CAEP, Mianyang 621999, People's Republic of China.
Nanotechnology. 2020 May 8;31(19):195712. doi: 10.1088/1361-6528/ab6fd8. Epub 2020 Jan 24.
Nanothermites composed of nano-fuels and oxidants are attractive energetic materials, which have potential applications in microscale energy-demanding systems. Herein, nano-Al/CuO with nitrocellulose (NC) binder have been bottom-up assembled on semiconductor bridge (SCB) chip by electrospray, from nanoparticles to three-dimensional (3D) deposited structure. The morphological and compositional characterization confirms the constituents in Al/CuO@NC are homogeneously mixed at nano scale and the 3D structure at micro scale is tunable. The as-deposited Al/CuO@NC exhibits excellent energy output and superior chemical reactivity. Specifically, the heat release of Al/CuO@NC (1179.5 J g) is higher than that of random mixed Al/CuO (730.9 J g). Benefiting from outstanding exothermic properties, the material integrated with SCB initiator chip (Al/CuO@NC-SCB) for potential ignition application was investigated. The Al/CuO@NC-SCB micro energetic initiator can be functioned rapidly (with delay time of 2.8 μs) and exhibits superb ignition performances with violent explosion process, high combustion temperature (4636 °C) and successful ignition of B/KNO propellant, in comparison to SCB initiator. The strategy provides promising route to introduce nano reactive particles into various functional energy-demanding systems for potential energetic applications.
由纳米燃料和氧化剂组成的纳米铝热剂是引人注目的含能材料,在微尺度能量需求系统中具有潜在应用。在此,含硝化纤维素(NC)粘合剂的纳米铝/氧化铜已通过电喷雾自下而上组装在半导体桥(SCB)芯片上,从纳米颗粒形成三维(3D)沉积结构。形态和成分表征证实了铝/氧化铜@NC中的成分在纳米尺度上均匀混合,且微尺度上的3D结构是可调的。沉积态的铝/氧化铜@NC表现出优异的能量输出和卓越的化学反应活性。具体而言,铝/氧化铜@NC的热释放量(1179.5 J/g)高于随机混合的铝/氧化铜(730.9 J/g)。受益于出色的放热性能,对与SCB引发芯片集成的材料(铝/氧化铜@NC-SCB)进行了潜在点火应用研究。与SCB引发器相比,铝/氧化铜@NC-SCB微含能引发器能够快速发挥作用(延迟时间为2.8 μs),并在剧烈的爆炸过程、高燃烧温度(4636°C)以及成功点燃硼/硝酸钾推进剂方面展现出卓越的点火性能。该策略为将纳米反应性颗粒引入各种功能性能量需求系统以实现潜在的含能应用提供了一条有前景的途径。