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Catalytic engineering overrides practical performance limitations: Revolutionizing energetic material design via cerium-mediated kinetic pathway optimization

  • Shoujia Li
  • , Jiahe Han
  • , Yuhang Han
  • , Hongwei Zhao
  • , Qingjun Jin
  • , Meiwen Cao*
  • , Baoguo Wang
  • , Qingzhao Chu*
  • , Yan Liu
  • , Pengyu Bi*
  • *此作品的通讯作者
  • Academy of Military Medical Science China
  • Beijing Institute of Technology
  • North University of China
  • China University of Petroleum (East China)

科研成果: 期刊稿件文章同行评审

摘要

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.

源语言英语
期刊论文编号115181
期刊Combustion and Flame
292
DOI
出版状态已出版 - 10月 2026
已对外发布

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