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Core-Shell Al-Polytetrafluoroethylene (PTFE) Configurations to Enhance Reaction Kinetics and Energy Performance for Nanoenergetic Materials

机译:核-壳铝-聚四氟乙烯(PTFE)构造可增强纳米能材料的反应动力学和能量性能

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摘要

The energy performance of solid energetic materials (Al, Mg, etc.) is typically restricted by a natural passivation layer and the diffusion-limited kinetics between the oxidizer and the metal. In this work, we use polytetrafluoroethylene (PTFE) as the fluorine carrier and the shielding layer to construct a new type of nano-Al based fuels. The PTFE shell not only prevents nano-Al layers from oxidation, but also assists in enhancing the reaction kinetics, greatly improving the stability and reactivity of fuels. An in situ chemical vapor deposition combined with the electrical explosion of wires (EEW) method is used to fabricate core-shell nanostructures. Studies show that by controlling the stoichiometric ratio of the precursors, the morphology of the PTFE shell and the energy performance can be easily tuned. The resultant composites exhibit superior energy output characters than that of their physically mixed Al/PTFE counterparts. This synthetic strategy might provide a general approach to prepare other high-energy fuels (Mg, Si).
机译:固体高能材料(Al,Mg等)的能量性能通常受到自然钝化层以及氧化剂和金属之间扩散受限的动力学的限制。在这项工作中,我们使用聚四氟乙烯(PTFE)作为氟载体和屏蔽层来构建新型的基于纳米Al的燃料。 PTFE壳层不仅可以防止纳米Al层氧化,还有助于增强反应动力学,从而大大提高了燃料的稳定性和反应性。原位化学气相沉积与金属丝的电爆炸(EEW)方法相结合,用于制造核壳纳米结构。研究表明,通过控制前体的化学计量比,可以轻松调整PTFE壳的形态和能量性能。所得复合材料显示出比其物理混合的Al / PTFE对应物更好的能量输出特性。这种合成策略可能为制备其他高能燃料(Mg,Si)提供一种通用方法。

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