TY - JOUR
T1 - Bidirectional catalysis between energetic perovskite and insensitive polymeric binder for enhanced decomposition
AU - Pu, Rui
AU - Wei, Wan Jun
AU - Xu, Ruixuan
AU - Yan, Qi Long
AU - Chen, Shao Li
N1 - Publisher Copyright:
© 2026 Elsevier B.V. All rights are reserved, including those for text and data mining, AI training, and similar technologies.
PY - 2026/6
Y1 - 2026/6
N2 - AbstractHigh-burning-rate solid propellants are in urgent demand for advanced aerospace and hypersonic propulsion systems. However, achieving high burn rates while maintaining safety and combustion stability remains challenging. Molecular perovskite energetic materials, represented by DAP-7, and the branched glycidyl azide polymer/plasticizer system (BGAP/A3) are promising candidates for high-energy propellant formulations due to their high energy density and favorable processing properties. Nevertheless, the thermal decomposition mechanism and interaction dynamics within the DAP-7/BGAP/A3 composite system are not yet fully understood, limiting their optimized application. This study systematically investigated the pyrolysis behavior, thermal decomposition kinetics and interaction mechanism between DAP-7 and BGAP/A3 binder system. The findings supported a strong interaction between DAP-7 and BGAP/A3, accompanied by a significant reduction in the decomposition temperatures and decrease in activation energy. Furthermore, the pyrolysis process of DAP-7/BGAP/A3 was studied, favoring the generation of small molecules such as NH3, N2, H2O, CO and CO2. A synergistic effect was proposed: the acidic environment and reactive intermediates devried from DAP-7 facilitate the cleavage of the BGAP/A3 backbone, while the decomposition products of BGAP/A3, in turn, promote the low-temperature decomposition of DAP-7, featuring lower reaction barrier. This work elucidates the bidirectional catalytic synergy and the efficient redox reactions between DAP-7 and BGAP/A3 and provides crucial support for the development of high-burn-rate solid propellants based on molecular perovskite energetic materials.
AB - AbstractHigh-burning-rate solid propellants are in urgent demand for advanced aerospace and hypersonic propulsion systems. However, achieving high burn rates while maintaining safety and combustion stability remains challenging. Molecular perovskite energetic materials, represented by DAP-7, and the branched glycidyl azide polymer/plasticizer system (BGAP/A3) are promising candidates for high-energy propellant formulations due to their high energy density and favorable processing properties. Nevertheless, the thermal decomposition mechanism and interaction dynamics within the DAP-7/BGAP/A3 composite system are not yet fully understood, limiting their optimized application. This study systematically investigated the pyrolysis behavior, thermal decomposition kinetics and interaction mechanism between DAP-7 and BGAP/A3 binder system. The findings supported a strong interaction between DAP-7 and BGAP/A3, accompanied by a significant reduction in the decomposition temperatures and decrease in activation energy. Furthermore, the pyrolysis process of DAP-7/BGAP/A3 was studied, favoring the generation of small molecules such as NH3, N2, H2O, CO and CO2. A synergistic effect was proposed: the acidic environment and reactive intermediates devried from DAP-7 facilitate the cleavage of the BGAP/A3 backbone, while the decomposition products of BGAP/A3, in turn, promote the low-temperature decomposition of DAP-7, featuring lower reaction barrier. This work elucidates the bidirectional catalytic synergy and the efficient redox reactions between DAP-7 and BGAP/A3 and provides crucial support for the development of high-burn-rate solid propellants based on molecular perovskite energetic materials.
KW - BGAP/A3
KW - DAP-7
KW - Perovskite energetic materials
KW - Thermal interactions
UR - https://www.scopus.com/pages/publications/105034731330
U2 - 10.1016/j.jaap.2026.107741
DO - 10.1016/j.jaap.2026.107741
M3 - 文章
AN - SCOPUS:105034731330
SN - 0165-2370
VL - 196
JO - Journal of Analytical and Applied Pyrolysis
JF - Journal of Analytical and Applied Pyrolysis
M1 - 107741
ER -