TY - JOUR
T1 - Thermal Interaction Mechanisms of Ammonium Perchlorate and Ammonia Borane
AU - Zhang, Yunlong
AU - Pu, Rui
AU - Chen, Shaoli
AU - Yan, Qilong
N1 - Publisher Copyright:
© 2025 by the authors.
PY - 2025/7
Y1 - 2025/7
N2 - Ammonia borane (AB), with a theoretical hydrogen content of 19.6 wt%, is constrained by its low crystalline density (0.758 g/cm3) and poor thermal stability (decomposing at 100 °C). In this study, AB/ammonium perchlorate (AP) composites were synthesized via freeze-drying at a 1:1 molar ratio. The integration of AP introduced intermolecular interactions that suppressed AB decomposition, increasing the onset temperature by 80 °C. Subsequent vacuum calcination at 100 °C for 2 h formed oxygen/fuel-integrated ammonium perchlorate borane (APB), which achieved decomposition temperatures exceeding 350 °C. The proposed mechanism involved AB decomposing into borazine and BN polymers at 100 °C, which then NH3BH2+/ClO4− combined to form APB. At 350 °C, APB underwent the following redox reactions: 4NH3BH2ClO4 → N2↑ + 4HCl↑ + 2B2O3 + N2O↑ + O2↑ + 7H2O↑ + H2↑, while residual AP decomposed. The composite exhibited improved density (1.66 g/cm3) and generated H2, N2, O2, and HCl, demonstrating potential for hydrogen storage. Additionally, safety was enhanced by the suppression of AB’s exothermic decomposition (100–200 °C). APB, with its high energy density and thermal stability, was identified as a promising high-energy additive for high-burning-rate propellants.
AB - Ammonia borane (AB), with a theoretical hydrogen content of 19.6 wt%, is constrained by its low crystalline density (0.758 g/cm3) and poor thermal stability (decomposing at 100 °C). In this study, AB/ammonium perchlorate (AP) composites were synthesized via freeze-drying at a 1:1 molar ratio. The integration of AP introduced intermolecular interactions that suppressed AB decomposition, increasing the onset temperature by 80 °C. Subsequent vacuum calcination at 100 °C for 2 h formed oxygen/fuel-integrated ammonium perchlorate borane (APB), which achieved decomposition temperatures exceeding 350 °C. The proposed mechanism involved AB decomposing into borazine and BN polymers at 100 °C, which then NH3BH2+/ClO4− combined to form APB. At 350 °C, APB underwent the following redox reactions: 4NH3BH2ClO4 → N2↑ + 4HCl↑ + 2B2O3 + N2O↑ + O2↑ + 7H2O↑ + H2↑, while residual AP decomposed. The composite exhibited improved density (1.66 g/cm3) and generated H2, N2, O2, and HCl, demonstrating potential for hydrogen storage. Additionally, safety was enhanced by the suppression of AB’s exothermic decomposition (100–200 °C). APB, with its high energy density and thermal stability, was identified as a promising high-energy additive for high-burning-rate propellants.
KW - NHBHClO
KW - ammonia borane
KW - ammonium perchlorate
KW - integrated design of fuel oxidant
UR - https://www.scopus.com/pages/publications/105010248770
U2 - 10.3390/molecules30132680
DO - 10.3390/molecules30132680
M3 - 文章
C2 - 40649199
AN - SCOPUS:105010248770
SN - 1420-3049
VL - 30
JO - Molecules
JF - Molecules
IS - 13
M1 - 2680
ER -