爆炸物
复合数
叠氮化物
材料科学
铜
碳化
复合材料
化学工程
纳米技术
化学
冶金
有机化学
扫描电子显微镜
工程类
作者
Xuwen Liu,Yan Hu,Jiaheng Hu,Jiaxin Su,Caimin Yang,Yinghua Ye,Ruiqi Shen
标识
DOI:10.1016/j.dt.2022.05.009
摘要
Copper azide (CA), as a primary explosive with high energy density, has not been practically used so far because of its high electrostatic sensitivity. The Cu2[email protected] core-shell structure hybrid material was synthesized by the “bottle around ship” methodology in this research by regulating the dissolution rate of Cu2O and the generation rate of metal-organic framework (MOF) materials. Cu2[email protected] was carbonized to form a [email protected] carbon ([email protected]) composite material. [email protected] was synthesized into a copper azide (CA) @PC composite energetic material through a gas-solid phase in-situ azidation reaction. CA is encapsulated in PC framework, which acts as a nanoscale Faraday cage, and its excellent electrical conductivity prevents electrostatic charges from accumulating on the energetic material's surface. The [email protected] composite energetic material has a CA content of 89.6%, and its electrostatic safety is nearly 30 times that of pure CA (1.47 mJ compared to 0.05 mJ). [email protected] delivers an outstanding balance of safety and energy density compared to similar materials.
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