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通过氧化石墨烯自组装制备具有高静电安全性的叠氮化铜/多孔石墨烯的模塑制造

Molding fabrication of copper azide/porous graphene with high electrostatic safety by self-assembly of graphene oxide.

作者信息

Yan Zhenzhan, Yang Li, Han Ji-Min, Li HaoJie

机构信息

State Key Laboratory of Explosion Science and Technology, Beijing Institute of Technology, Beijing, 100081, People's Republic of China.

出版信息

Nanotechnology. 2021 Jun 29;32(38). doi: 10.1088/1361-6528/abc7d5.

Abstract

In the wake of the development of micro-initiation systems, traditional lead-based primary explosives hardly satisfy the needs of high energy output. Copper azide (CA), one of the most promising primary explosives, is restricted in practical applications because of its high electrostatic sensitivity and the method of charge in micro-initiation systems. To tackle these issues, two synthetic paths of CA based on a porous graphene skeleton are proposed. First, a viscous homogeneous mixed solution is rapidly frozen in liquid nitrogen to form a spherical copper-containing precursor material. The copper azide/carbon/graphene composite (CA/C/GA) was fabricated by freeze-drying, high-temperature thermal decomposition andazidation. Second, A cylindrical copper/graphene gel formed by high-temperature hydrothermal self-assembly is served as a precursor material. Also, hydrogen reduction andazidation procedures were utilized to synthesize copper azide@graphene foam (CA@GF). Detailed characterization indicates that the excellent performance of composite materials is ascribed to the excellent electrical and thermal conductivity of graphene material. The electrostatic sensitivities of CA/C/GA and CA@GF were 3.6 mJ and 2.5 mJ, respectively, and the flame sensitivity was 50 cm. The course of fabrication is environmentally friendly and easy to perform and it may be well-matched with the charge of the micro-detonation system.

摘要

随着微起爆系统的发展,传统的铅基起爆药难以满足高能量输出的需求。叠氮化铜(CA)作为最有前途的起爆药之一,由于其高静电敏感性以及在微起爆系统中的装药方式,在实际应用中受到限制。为了解决这些问题,提出了基于多孔石墨烯骨架的CA的两条合成路径。首先,将粘性均匀混合溶液在液氮中快速冷冻以形成球形含铜前驱体材料。通过冷冻干燥、高温热分解和叠氮化制备了叠氮化铜/碳/石墨烯复合材料(CA/C/GA)。其次,以高温水热自组装形成的圆柱形铜/石墨烯凝胶作为前驱体材料。此外,利用氢气还原和叠氮化程序合成了叠氮化铜@石墨烯泡沫(CA@GF)。详细表征表明,复合材料的优异性能归因于石墨烯材料优异的电导率和热导率。CA/C/GA和CA@GF的静电感度分别为3.6 mJ和2.5 mJ,火焰感度为50 cm。制备过程环境友好且易于操作,并且可能与微爆轰系统的装药良好匹配。

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