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Unraveling Antagonistic Collision-Controlled Reactivity in Energetic Molecular Perovskites with Deep Potential Molecular Dynamics

Materials Science 2025-12-29 v1 Chemical Physics

Abstract

The precise regulation of chemical decompositions in energetic materials, whether towards rapid ignition or stable endurance, requires atomic-scale principles governing reactivity, which remain elusive yet. Herein, we resolve this challenge through deep potential molecular dynamics (DPMD) simulations, uncovering a universal collision-control principle in energetic molecular perovskites, (H2dabco)B(ClO4)3\text{(H}_{2}\text{dabco)B(ClO}_{4}\text{)}_{3}, where H2dabco2+\text{H}_{2}\text{dabco}^{2+} = 1,4-diazabicyclo[2.2.2]octane-1,4-diium, B = Na+\text{Na}^{+}, K+\text{K}^{+}, Rb+\text{Rb}^{+}, NH4+\text{NH}_{4}^{+} for DAP-1, DAP-2, DAP-3 and DAP-4, respectively. Atomic-scale simulation with Arrhenius fitting for over 100-ps trajectories reveals that increasing B-site ionic radius (Na+<K+<Rb+\text{Na}^{+} < \text{K}^{+} < \text{Rb}^{+}) simultaneously reduces both activation energy EaE_{a}, which enhances reactivity, and pre-exponential factor AA which suppresses collision probabilities for hydrogen transfer between site XX and site AA, with sharply opposing kinetic consequences. This duality well explains the peak stability and insensitivity in K+\text{K}^{+}-based DAP-2, which optimally balance thermal endurance and collision dissipation. For ammonium-based DAP-4, though the radius of NH4+\text{NH}_{4}^{+} is close to K+\text{K}^{+}, the reactive B-site cation triggers proton transfer that promotes C-H\text{C-H} bond rupture. By linking static cation radii to dynamic EaE_{a}-ln(A)(A) coupling, we rationalize non-monotonic decomposition temperatures (K+>NH4+>Rb+>Na+\text{K}^{+} > \text{NH}_{4}^{+} > \text{Rb}^{+} > \text{Na}^{+}) macroscopic stability and establishes cornerstones for universal energetic material design.

Keywords

Cite

@article{arxiv.2503.04540,
  title  = {Unraveling Antagonistic Collision-Controlled Reactivity in Energetic Molecular Perovskites with Deep Potential Molecular Dynamics},
  author = {Ming-Yu Guo and Yun-Fan Yan and Pin Chen and Wei-Xiong Zhang},
  journal= {arXiv preprint arXiv:2503.04540},
  year   = {2025}
}