TY - JOUR
T1 - An AB2X5-type oxidizer by multi-ionic assembly for high-energy solid propellants
AU - Lv, Hongyu
AU - Feng, Xiaoyu
AU - Li, Xin
AU - Ning, Te
AU - Li, Hui
AU - Ao, Wen
AU - Nie, Hongqi
AU - Song, Siwei
AU - Wang, Yi
AU - Zhang, Qinghua
N1 - Publisher Copyright:
© 2026
PY - 2026/10/15
Y1 - 2026/10/15
N2 - Solid propellants are a crucial power source for modern aerospace, whose energy enhancement primarily relies on breakthroughs in oxidizer performance. However, the key energy parameters of oxidizers are interdependent. Improvements in oxygen balance and enthalpy of formation lead to a decrease in hydrogen content. Addressing this limitation, this study synthesized a novel AB₂X₅-type oxidizer, (CH3NH3+)(NH3CH2CH2NH32+)2(ClO4−)5 (named EMP), via a multi-ion assembly strategy. EMP achieves synergistic optimization of oxygen balance (OBCO: 11%), enthalpy of formation (−187.5 kJ·mol−1), and hydrogen content (4.01%), while also being characterized by simple synthesis, high density (1.859 g·cm−3), high decomposition temperature (330.7 °C), and low hygroscopicity (critical humidity: 78% RH at 25 °C). Theoretical predictions indicate that in HTPB-based solid propellants, EMP as an oxidizer can increase the theoretical specific impulse to 279.9 s, significantly outperforming ammonium perchlorate (AP, 263.7 s). The experiment further confirmed that partially replacing AP by EMP (around 20 wt%) in traditional AP-based propellants can enhance the burning rate (from 4.68 to 5.31 mm·s−1) and effectively reduce the average molecular weight of combustion products, demonstrating the enhanced energy release efficiency and energy conversion efficiency of the propellant. This work not only validates the application potential of EMP as a high-performance oxidizer but also provides novel insights and experimental evidence for the molecular design and performance regulation of next-generation solid propellant oxidizers.
AB - Solid propellants are a crucial power source for modern aerospace, whose energy enhancement primarily relies on breakthroughs in oxidizer performance. However, the key energy parameters of oxidizers are interdependent. Improvements in oxygen balance and enthalpy of formation lead to a decrease in hydrogen content. Addressing this limitation, this study synthesized a novel AB₂X₅-type oxidizer, (CH3NH3+)(NH3CH2CH2NH32+)2(ClO4−)5 (named EMP), via a multi-ion assembly strategy. EMP achieves synergistic optimization of oxygen balance (OBCO: 11%), enthalpy of formation (−187.5 kJ·mol−1), and hydrogen content (4.01%), while also being characterized by simple synthesis, high density (1.859 g·cm−3), high decomposition temperature (330.7 °C), and low hygroscopicity (critical humidity: 78% RH at 25 °C). Theoretical predictions indicate that in HTPB-based solid propellants, EMP as an oxidizer can increase the theoretical specific impulse to 279.9 s, significantly outperforming ammonium perchlorate (AP, 263.7 s). The experiment further confirmed that partially replacing AP by EMP (around 20 wt%) in traditional AP-based propellants can enhance the burning rate (from 4.68 to 5.31 mm·s−1) and effectively reduce the average molecular weight of combustion products, demonstrating the enhanced energy release efficiency and energy conversion efficiency of the propellant. This work not only validates the application potential of EMP as a high-performance oxidizer but also provides novel insights and experimental evidence for the molecular design and performance regulation of next-generation solid propellant oxidizers.
KW - Combustion performance
KW - Energy performance
KW - Multi-ionic assembly
KW - Oxidizer
KW - Solid propellant
UR - https://www.scopus.com/pages/publications/105046899187
U2 - 10.1016/j.cej.2026.180464
DO - 10.1016/j.cej.2026.180464
M3 - 文章
AN - SCOPUS:105046899187
SN - 1385-8947
VL - 546
JO - Chemical Engineering Journal
JF - Chemical Engineering Journal
M1 - 180464
ER -