TY - JOUR
T1 - MgH2 as a self-activating fuel
T2 - atomic insights into coupled dehydrogenation-oxidation mechanisms
AU - Han, Jiahe
AU - Wen, Mingjie
AU - Chang, Xiaoya
AU - Chen, Dongping
AU - Chu, Qingzhao
N1 - Publisher Copyright:
© 2026 Elsevier B.V.
PY - 2026/11/1
Y1 - 2026/11/1
N2 - Magnesium hydride (MgH2) is a promising energetic additive for solid propellants, yet the atomic-scale coupling between its rapid dehydrogenation and subsequent oxidation remains poorly understood. In this study, we developed a high-fidelity neural network potential (NNP) with ab initio accuracy to reveal the distinct combustion mechanisms of MgH2 versus pure Mg in oxygen environments. Molecular dynamics simulations uncover a unique “Coupled Dehydrogenation-Oxidation” (CDO) mechanism governing MgH2 combustion. Unlike the diffusion-limited shrinking-core oxidation of Mg, MgH2 acts as a “self-activating” fuel. We identify a critical “dehydrogenation-induced shattering” process, where the internal pressure from H2 release mechanically ruptures the MgO passivation shell, creating interconnected channels. This structural damage induces a dominant “channeling effect”, significantly enhancing the inward diffusion of O2 and enabling volumetric oxidation. Furthermore, the interfacial formation of H2O generates lattice defects that facilitate oxygen transport, creating a reaction-transport feedback loop that accelerates global kinetics. These findings provide a rigorous theoretical basis for the superior ignition sensitivity of MgH2 and offer atomistic guidance for designing high-performance energetic formulations.
AB - Magnesium hydride (MgH2) is a promising energetic additive for solid propellants, yet the atomic-scale coupling between its rapid dehydrogenation and subsequent oxidation remains poorly understood. In this study, we developed a high-fidelity neural network potential (NNP) with ab initio accuracy to reveal the distinct combustion mechanisms of MgH2 versus pure Mg in oxygen environments. Molecular dynamics simulations uncover a unique “Coupled Dehydrogenation-Oxidation” (CDO) mechanism governing MgH2 combustion. Unlike the diffusion-limited shrinking-core oxidation of Mg, MgH2 acts as a “self-activating” fuel. We identify a critical “dehydrogenation-induced shattering” process, where the internal pressure from H2 release mechanically ruptures the MgO passivation shell, creating interconnected channels. This structural damage induces a dominant “channeling effect”, significantly enhancing the inward diffusion of O2 and enabling volumetric oxidation. Furthermore, the interfacial formation of H2O generates lattice defects that facilitate oxygen transport, creating a reaction-transport feedback loop that accelerates global kinetics. These findings provide a rigorous theoretical basis for the superior ignition sensitivity of MgH2 and offer atomistic guidance for designing high-performance energetic formulations.
KW - Combustion
KW - Magnesium hydride
KW - Molecular dynamics
KW - Neural network potential
UR - https://www.scopus.com/pages/publications/105041827633
U2 - 10.1016/j.apsusc.2026.167468
DO - 10.1016/j.apsusc.2026.167468
M3 - Article
AN - SCOPUS:105041827633
SN - 0169-4332
VL - 745
JO - Applied Surface Science
JF - Applied Surface Science
M1 - 167468
ER -