TY - JOUR
T1 - Superior Energy Release of Ammonium Perchlorate Composites by Embedding Heterostructured Carbon Nanotube/Tricobalt Tetraoxide Thermal Conduction Pathways
AU - Xu, Ruixuan
AU - Qin, Yuan
AU - Hao, Junlian
AU - Guo, Yongqiang
AU - Jiang, Hao
AU - Meng, Kejuan
AU - Yang, Sulan
AU - Zhang, Kaili
AU - Gu, Junwei
N1 - Publisher Copyright:
Copyright © 2025 Ruixuan Xu et al.
PY - 2025/1
Y1 - 2025/1
N2 - To address the inherent challenge of low reaction efficiency arising from interfacial thermal resistance in composite energetic materials, this study proposes a synergistic strategy integrating engineered thermal conduction pathways with precision catalysis for achieving high-efficiency energy release in ammonium perchlorate (AP). Heterostructured carbon nanotube (CNT)/Co3O4 was synthesized via in situ growth of Co3O4 nanoclusters on CNTs, followed by embedding onto the AP surface through spray drying-suspension coating technology. Comprehensive characterization confirmed the effective anchoring, uniform distribution, and interfacial interactions of Co3O4. With only 1 wt% CNT/Co3O4 loading, the high-temperature decomposition peak temperature of AP was dramatically reduced from 450.9 °C (pristine AP) to 310.7 °C, accompanied by a 24.3% enhancement in heat release and a substantial 64.8% reduction in activation energy. Combustion tests revealed a 72.6% increase in flame radiation intensity and a 2.3-fold acceleration in pressurization rate for AP@CNT/Co mixing with aluminum. Mechanistic studies elucidate a tripartite synergy: (a) CNT-derived thermal conduction pathways elevate thermal conductivity, (b) Co3O4 facilitates proton/electron transfer and drives the oxidation of gaseous products toward higher-valent nitrogen oxides, and (c) surface microporosity accelerates heat/mass diffusion. This concerted action enables focused, rapid, and efficient energy release from AP. This work establishes a generic interfacial engineering paradigm for enhancing energy release efficiency in composite energetic materials.
AB - To address the inherent challenge of low reaction efficiency arising from interfacial thermal resistance in composite energetic materials, this study proposes a synergistic strategy integrating engineered thermal conduction pathways with precision catalysis for achieving high-efficiency energy release in ammonium perchlorate (AP). Heterostructured carbon nanotube (CNT)/Co3O4 was synthesized via in situ growth of Co3O4 nanoclusters on CNTs, followed by embedding onto the AP surface through spray drying-suspension coating technology. Comprehensive characterization confirmed the effective anchoring, uniform distribution, and interfacial interactions of Co3O4. With only 1 wt% CNT/Co3O4 loading, the high-temperature decomposition peak temperature of AP was dramatically reduced from 450.9 °C (pristine AP) to 310.7 °C, accompanied by a 24.3% enhancement in heat release and a substantial 64.8% reduction in activation energy. Combustion tests revealed a 72.6% increase in flame radiation intensity and a 2.3-fold acceleration in pressurization rate for AP@CNT/Co mixing with aluminum. Mechanistic studies elucidate a tripartite synergy: (a) CNT-derived thermal conduction pathways elevate thermal conductivity, (b) Co3O4 facilitates proton/electron transfer and drives the oxidation of gaseous products toward higher-valent nitrogen oxides, and (c) surface microporosity accelerates heat/mass diffusion. This concerted action enables focused, rapid, and efficient energy release from AP. This work establishes a generic interfacial engineering paradigm for enhancing energy release efficiency in composite energetic materials.
UR - https://www.scopus.com/pages/publications/105018581750
U2 - 10.34133/research.0938
DO - 10.34133/research.0938
M3 - 文章
AN - SCOPUS:105018581750
SN - 2096-5168
VL - 8
JO - Research
JF - Research
M1 - 0938
ER -