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构建高度可靠和自适应的初级爆炸复合材料,通过金属有机骨架和交联聚合物的混合模板辅助微引发器。

Constructing Highly Reliable and Adaptive Primary Explosive Composites for Micro-Initiator Assisting by a Hybrid Template of Metal-Organic Frameworks and Cross-Linked Polymers.

机构信息

Henan Key Laboratory of Crystalline Molecular Functional Materials, Green Catalysis Center and College of Chemistry, Zhengzhou University, Zhengzhou, 450001, P. R. China.

出版信息

Small. 2023 Jun;19(24):e2300157. doi: 10.1002/smll.202300157. Epub 2023 Mar 14.

Abstract

Primary explosive, as a reliable initiator for secondary explosives, is the central component of micro-initiators for modern aerospace systems and military operations. However, they are typically prepared as powders, posing potential safety risks because of the inevitable particles scattering issues in the actual working environments. Here, the fabrication of a highly adaptive bulk material of copper azide (CA)-based safe primary explosive for micro-initiators is demonstrated. This bulk material, as derived by a complete azidation reaction of the carbonized metal-organic framework/cross-linked polymer hybrid template, enables the firm embedding of active CA species in a cross-linked carbon network (denoted as CA-C). Interestingly, this CA-C bulk material demonstrates multifarious mechanical stabilities (e.g., good shock and vibration resistance, and anti-overload capacity) in the simulated working conditions. Meanwhile, the CA contents in the CA-C bulk material reached as high as 70.3%, ensuring its detonation power. As a proof of concept, CA-C bulk material assembling in a micro-detonator can efficiently detonate the secondary explosive of CL-20 under laser irradiation. This work hereby advances the fabrication of safe and powerful primary explosives for the fulfillment of safe micro-initiator in a broad range of applications in aerospace systems.

摘要

单质炸药作为可靠的次级炸药引爆剂,是现代航空航天系统和军事行动中微型引爆器的核心组成部分。然而,它们通常被制备成粉末状,由于在实际工作环境中不可避免的颗粒散射问题,存在潜在的安全风险。在这里,展示了一种基于叠氮化铜(CA)的安全单质炸药的高适应性块状材料的制备,用于微型引爆器。这种块状材料是通过碳化金属有机骨架/交联聚合物杂化模板的完全叠氮化反应得到的,能够将活性 CA 物种牢固地嵌入交联碳网络中(表示为 CA-C)。有趣的是,这种 CA-C 块状材料在模拟工作条件下表现出多种机械稳定性(例如,良好的抗冲击和抗振动性以及抗过载能力)。同时,CA-C 块状材料中的 CA 含量高达 70.3%,确保了其爆炸威力。作为概念验证,在微雷管中组装 CA-C 块状材料可以在激光照射下有效地引爆 CL-20 等次级炸药。这项工作推进了安全单质炸药的制备,以满足航空航天系统中各种应用中安全微型引爆器的需求。

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