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February 21, 2026Inorganic Chemistry0 citationsOpen Access

Safe Stockpiling of the MTX-1 Primary Explosive in Alkali or Alkaline Earth Metal Complexes and Coordination Polymers

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MSMaksim A. SamsonovJMJakub MikuláštíkRMRobert Matyáš

Key Points

  • The aim is to explore safe stockpiling methods for the MTX-1 explosive using metal complexes and coordination polymers.
  • Investigated interactions of MTX-1 with alkali and alkaline earth metal hydroxides.
  • Characterized structures formed in solid state upon complexation.
  • Conducted topological analysis of electron density and π-π stacking interactions.
  • Evaluated thermal stability and rehydration in moisture.
  • Most stable complexes form with Mg<sup>2+</sup> and Ca<sup>2+</sup> ions.
  • Identified discrete mononuclear and dimeric structures in solid state.
  • One-dimensional, two-dimensional, and three-dimensional polymeric structures observed for larger ions.
  • Complexes exhibit slight sensitivity after thermal treatment above 200 °C.

Abstract

The safe stockpiling of high-energy combustible and explosive materials is important for environmental and human population protection, particularly in mining and military areas. MTX-1 (2-(tetrazol-5-yl-diazenyl)guanidine) is used in percussion primer compositions that react rapidly with the hydroxides of alkali or alkaline earth metals to form complexes of diverse composition. These are insensitive to mechanical stimuli and to intense heat under high confinement. The most stable complexes were found to be those with ions having the smallest effective ion radii (Mg2+ and Ca2+), followed by Li+. These complexes form discrete mononuclear (Mg2+ and Ca2+) or dimeric (Li+) structures in the solid state. One-dimensional (1D) (Na+, Sr2+, and Ba2+), 2D (K+ and Rb+), and 3D (Cs+) coordination polymeric structures were found for the remaining complexes with larger ions. Detailed topological analysis of the electron density and quantitative estimation of π-π stacking interactions were performed. Complexes could be used for intense flame coloring in pyrotechnics. Upon thermal treatment of complexes over ∼200 °C, water is lost from the coordination sphere of the metal ion, which leads to materials that are slightly sensitive and rehydrate in moist air. Recovery of insoluble MTX-1 is possible when these complexes are treated with an aqueous acid.

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Cite This Study

Samsonov et al. (2026) studied this question.

synapsesocial.com/papers/69994ba9873532290d01fcffhttps://doi.org/10.1021/acs.inorgchem.5c04892
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