TY - JOUR
T1 - Catalytic engineering overrides practical performance limitations
T2 - Revolutionizing energetic material design via cerium-mediated kinetic pathway optimization
AU - Li, Shoujia
AU - Han, Jiahe
AU - Han, Yuhang
AU - Zhao, Hongwei
AU - Jin, Qingjun
AU - Cao, Meiwen
AU - Wang, Baoguo
AU - Chu, Qingzhao
AU - Liu, Yan
AU - Bi, Pengyu
N1 - Publisher Copyright:
© 2026 The Combustion Institute. Published by Elsevier Inc. All rights are reserved, including those for text and data mining, AI training, and similar technologies.
PY - 2026/10
Y1 - 2026/10
N2 - Overcoming the persistent challenge of incomplete combustion in aluminum-based energetic materials, this study introduces a catalytic engineering strategy that transcends conventional practical performance limitations. By incorporating aluminum-cerium (Al2Ce) alloy into the ammonium perchlorate (AP) system, a dual-pathway mechanism that combines physical dispersion and chemical catalysis revolutionizes the energy release profile. Multiscale in situ characterization and first-principles calculations unveil that cerium directly participates in an exothermic redox reaction with the low-temperature decomposition intermediate of AP, HClO4, leading to a dramatically exothermic process. The overall reaction energy on the Ce2O3 (0001) surface is approximately 6.09 eV more negative than that on the α-Al2O3 (0001) surface, indicating a much more kinetically favorable pathway and undergoing a Ce3+ to Ce4+ transition to form CeO2. This in situ-generated porous CeO2 disrupts the passivating Al2O3 layer, exposes fresh metallic interfaces, and establishes a self-sustaining thermal cycle. Remarkably, despite an 11.3% reduction in total calorific value, the combustion temperature surges by 15% to 2848°C, achieving near-complete aluminum combustion efficiency approaching 100% and generating monodisperse CeO2/Al2O3 aerosols with exceptional stability (gas evolution <0.5 mL·g⁻¹). This work establishes cerium-mediated reaction pathway optimization as a novel design strategy, shifting the design principle of energetic materials from the sole pursuit of energy density maximization toward the catalytic engineering regulation of reaction kinetics.
AB - Overcoming the persistent challenge of incomplete combustion in aluminum-based energetic materials, this study introduces a catalytic engineering strategy that transcends conventional practical performance limitations. By incorporating aluminum-cerium (Al2Ce) alloy into the ammonium perchlorate (AP) system, a dual-pathway mechanism that combines physical dispersion and chemical catalysis revolutionizes the energy release profile. Multiscale in situ characterization and first-principles calculations unveil that cerium directly participates in an exothermic redox reaction with the low-temperature decomposition intermediate of AP, HClO4, leading to a dramatically exothermic process. The overall reaction energy on the Ce2O3 (0001) surface is approximately 6.09 eV more negative than that on the α-Al2O3 (0001) surface, indicating a much more kinetically favorable pathway and undergoing a Ce3+ to Ce4+ transition to form CeO2. This in situ-generated porous CeO2 disrupts the passivating Al2O3 layer, exposes fresh metallic interfaces, and establishes a self-sustaining thermal cycle. Remarkably, despite an 11.3% reduction in total calorific value, the combustion temperature surges by 15% to 2848°C, achieving near-complete aluminum combustion efficiency approaching 100% and generating monodisperse CeO2/Al2O3 aerosols with exceptional stability (gas evolution <0.5 mL·g⁻¹). This work establishes cerium-mediated reaction pathway optimization as a novel design strategy, shifting the design principle of energetic materials from the sole pursuit of energy density maximization toward the catalytic engineering regulation of reaction kinetics.
KW - Aluminum-cerium alloy
KW - Ammonium perchlorate
KW - Combustion efficiency
KW - Energy release
KW - Thermal decomposition
UR - https://www.scopus.com/pages/publications/105044161556
U2 - 10.1016/j.combustflame.2026.115181
DO - 10.1016/j.combustflame.2026.115181
M3 - Article
AN - SCOPUS:105044161556
SN - 0010-2180
VL - 292
JO - Combustion and Flame
JF - Combustion and Flame
M1 - 115181
ER -