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Sandwich-like interfacial structured polydopamine (PDA)/Wax/PDA: A novel design for simultaneously improving the safety and mechanical properties of highly explosive-filled polymer composites

Authors :
Cong-mei Lin
Shi-jun Liu
Yu-shi Wen
Jia-hui Liu
Guan-song He
Xu Zhao
Zhi-jian Yang
Ling Ding
Li-ping Pan
Jiang Li
Shao-yun Guo
Source :
Energetic Materials Frontiers, Vol 3, Iss 4, Pp 189-198 (2022)
Publication Year :
2022
Publisher :
KeAi Communications Co. Ltd., 2022.

Abstract

High melting point paraffin wax (HPW) is a novel desensitizer that has the potential to achieve low sensitivity of energetic crystals, such as 1,3,5,7-tetranitro-1,3,5,7-tetrazocane (HMX). However, first-principles calculations confirmed that interface deterioration occurred due to a weak interfacial connection. In this work, the polydopamine (PDA)/HPW/PDA with a sandwich-like interfacial structure was prepared using three simple steps to improve safety performance, thermal stability, and mechanical properties. The theoretical and experimental results suggested that the PDA acted as a double-sided tape to adhere to the adjacent HMX/HPW layer or HPW/polymer binder layer, thus substantially enhancing the interfacial interaction. While maintaining higher safety performance (impact energy: 11∼13 ​J) than that of HMX (5 ​J), the new design improved the β-δ polymorphic transition temperature of HMX to 219.4 ​°C for HMX@PDA@HPW@PDA, which was higher than that of HMX@HPW (202.8 ​°C) and core@double-shell HMX@PDA@HPW (208.9 ​°C). Among the modified energetic composites, polymer-bonded explosives (PBXs) based on HMX@PDA@HPW@PDA exhibited the optimum mechanical performance, including the storage modulus and tensile fracture energy, which were 43.5% and 77.1% higher than those of PBXs based on raw HMX, respectively. The achieved favorable systematical enhancement in thermal stability, mechanical properties, and safety performance shows that such a sandwich-like interfacial structure has great potential for application for HMX-based formulation used in complex environments.

Details

Language :
English
ISSN :
26666472
Volume :
3
Issue :
4
Database :
Directory of Open Access Journals
Journal :
Energetic Materials Frontiers
Publication Type :
Academic Journal
Accession number :
edsdoj.14890b600c964dde90a02021d6fb1613
Document Type :
article
Full Text :
https://doi.org/10.1016/j.enmf.2022.03.003