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March 3, 2026ACS Applied Materials & Interfaces2 citations

Unveiling Insensitive High-Nitrogen Energetic Materials: Fabrication of Pyrimidine via Bridging and Self-Assembly

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SBShreyasi BanikIndian Institute of Technology KanpurVGVikas D. GhuleNational Institute of Technology KurukshetraSDSrinivas Dharavath

Key Points

  • These novel energetic compounds showcase impressive thermal stability, exhibiting temperatures from 190 to 278 °C.
  • Detonation performance measurements reveal velocities of 8388 to 9496 m/s, indicating high effectiveness.
  • Utilizing a bridging approach alongside self-assembly, this study synthesizes energetic materials with superior characteristics.
  • The findings highlight the potential for scalable manufacturing of these advanced materials, suitable for various applications.

Abstract

The development of insensitive high-energy-density materials (IHEMs) without compromising their performance remains a significant challenge for energetic materials chemists worldwide. In this study, a straightforward bridging approach and a much-underexplored self-assembly approach were employed to synthesize a series of novel energetic compounds with exceptional properties, including high densities (1.80-1.92 g cm-3), excellent thermal stability (190-278 °C), and outstanding detonation performance (VOD: 8388-9496 m s-1; DP: 28.26-37.60 GPa). These materials also exhibit remarkable insensitivity to impact (>25 J) and friction (>288 N). Among them, compound 5 demonstrates superior physicochemical and energetic characteristics, making it a promising alternative to HMX and FOX-7 and recently reported compounds 2,4,6-triamino-5-nitropyrimidine-1,3-dioxide (ICM-102) and 3,5-diamino-6-hydroxy-2-oxide-4-nitropyrimidone (IHEM-1). This study underscores the exceptional potential of self-assembly and bridging strategies in designing advanced IHEMs, offering enhanced synthetic feasibility and scalability for next-generation advanced energetic materials.

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Cite This Study

Banik et al. (2026) studied this question.

synapsesocial.com/papers/69a75c0fc6e9836116a2475ehttps://doi.org/10.1021/acsami.5c24053
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