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首页> 外文期刊>Advanced Functional Materials >Copper Azide Confined Inside Templated Carbon Nanotubes
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Copper Azide Confined Inside Templated Carbon Nanotubes

机译:叠氮化铜限制在模板化碳纳米管内

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The currently used primary explosives, such as lead azide and lead sty-phnate, present serious health hazards due to the toxicity of lead. There is a need to replace them with equally energetic but safer-to-handle and more environmentally friendly materials. Copper azide is more environmentally acceptable, but very sensitive and detonates easily from electrostatic charges during handling. If the highly sensitive copper azide is encapsulated within conducting containers, such as anodic aluminum oxide (AAO)-templated carbon nanotubes (CNTs), its sensitivity can be tamed. This work describes a technique for confining energetic copper azide within CNTs. ~5 nm colloidal copper oxide nanoparticles are synthesized and filled into the 200 nm diameter CNTs, produced by template synthesis. The Cu-O inside the CNTs is reduced in hydrogen to copper, and reacted with hydra-zoic acid gas to produce copper azide. Upon initiation, the 60 μm long straight, open-ended CNTs guide decomposition gases along the tube channel without fracturing the nanotube walls. These novel materials have potential for applications as nano-detonators and green primary explosives; they also offer new opportunities for understanding the physics of detonation at the nanoscale.
机译:当前使用的主要爆炸物,例如叠氮化铅和苯乙烯甲酸酯,由于铅的毒性而存在严重的健康危害。有必要用同样精力充沛但操作更安全和更环保的材料代替它们。叠氮化铜在环境上更可接受,但非常敏感,在处理过程中容易从静电荷中引爆。如果将高度敏感的叠氮化铜封装在诸如阳极氧化铝(AAO)模板的碳纳米管(CNT)之类的导电容器内,则可以控制其敏感度。这项工作描述了一种将高能叠氮化铜限制在CNT中的技术。合成〜5 nm的胶体氧化铜纳米粒子,并填充到通过模板合成制得的直径为200 nm的CNT中。 CNT内部的Cu-O在氢中还原为铜,并与氢偶氮酸反应生成叠氮化铜。引发时,60μm长的直的,开口的CNT沿着管通道引导分解气体,而不会使纳米管壁破裂。这些新型材料具有用作纳米雷管和绿色初级炸药的潜力。他们还提供了新的机会来了解纳米尺度的爆轰物理学。

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  • 来源
    《Advanced Functional Materials》 |2010年第18期|p.3168-3174|共7页
  • 作者单位

    Department of Materials Science and Engineering, and A.J. Drexel Nanotechnology Institute Drexel University Philadelphia, PA 19104 (USA);

    Department of Materials Science and Engineering, and A.J. Drexel Nanotechnology Institute Drexel University Philadelphia, PA 19104 (USA),Department of Chemical Sciences, Indian Institute of Science Education and Research, Kolkata, Mohanpur, W. B. 741252, India;

    Department of Materials Science and Engineering, and A.J. Drexel Nanotechnology Institute Drexel University Philadelphia, PA 19104 (USA);

    Research, Development, Test and Evaluation IHDIV NSWC, 4104 Evans Way, Suite 102, Indian Head MD 20640-5102 (USA);

    Research, Development, Test and Evaluation IHDIV NSWC, 4104 Evans Way, Suite 102, Indian Head MD 20640-5102 (USA);

    Department of Materials Science and Engineering, and A.J. Drexel Nanotechnology Institute Drexel University Philadelphia, PA 19104 (USA);

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