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Modulation of iron oxide-ammonium dinitramide (ADN) interface: enhancing catalytic decomposition and combustion for green propellants

  • Yuanlu Cui
  • , Teng Wang
  • , Ju Li
  • , Guang Yang
  • , Kai Xin
  • , Zheng Huo
  • , Jinxian Zhai
  • , Xinpeng Zhang
  • , Rongjie Yang*
  • *Corresponding author for this work
  • Beijing Institute of Technology

Research output: Contribution to journalArticlepeer-review

Abstract

Ammonium dinitramide (ADN), a promising green oxidizer for composite solid propellants, faces challenges like unstable low-pressure combustion and high burning rate pressure sensitivity. Introducing catalysts is an effective strategy to enhance the combustion performance of ADN propellants. In this study, iron oxide (Fe2O3) was incorporated into ADN particles to modulate their interface, effectively enhancing the contact area between them. Following the identification of its structural characteristics via morphological and elemental analysis, the ADN@Fe2O3 composite was incorporated into polyether binder-based propellant. Thermal decomposition tests indicated that the propellant containing ADN@Fe2O3 exhibited a lower decomposition temperature, a 10% increase in total heat release. Propellant combustion tests revealed the addition of ADN@Fe2O3 shortened the ignition delay time by 70%, increased the burning surface temperature from 450 to 550℃, enhanced the burning rate and lowered the pressure exponent from 0.86 to 0.68. Furthermore, the particle size of condensed combustion products decreased, while the α-Al2O3 content rose, indicating the more complete combustion of aluminum. Reaction path energy calculations showed that Fe2O3 reduced the energy barriers for rate-limiting steps during liquid-phase and gas-phase thermal decomposition of ADN by 28% and 75%, respectively. By modulation of interface, this study achieved highly efficient catalysis of the decomposition and combustion of ADN based propellant by Fe2O3. It also revealed the microscopic mechanism of the catalysis from theoretical perspective, providing new insights for controlling the thermal decomposition and combustion processes of energetic materials.

Original languageEnglish
Article number167550
JournalApplied Surface Science
Volume746
DOIs
Publication statusPublished - 15 Nov 2026
Externally publishedYes

Keywords

  • Ammonium dinitramide
  • Catalytic mechanism
  • Composite solid propellant
  • Decomposition and combustion
  • Iron oxide

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