Computational Design and Theoretical Evaluation of Novel Heterocyclic Energetic Materials Based on 5‐H‐Imidazo‐[4,5‐c]‐Pyridazine and 1,2,4‐Triazolo‐[4,3‐a]‐Pyrazine Scaffolds

ABSTRACT Novel energetic materials based on 5‐H‐imidazo‐[4,5‐c]‐pyridazine and 1,2,4‐triazolo‐[4,3‐a]‐pyrazine scaffolds, modified with explosophore groups (NO 2 , NHNO 2 , N 3 , and ONO 2 ), were theoretically designed and evaluated by DFT at the B3LYP/def2‐TZVPP // B3LYP/6‐311G(d,p) level. Nitramino derivatives exhibited the highest chemical stability based on HOMO‐LUMO gap analysis. Heat of formation followed the trend N 3 > NO 2 > NHNO 2 > ONO 2 . Most imidazopyridazine derivatives exceeded RDX density, while all surpassed TNT. All derivatives showed superior detonation parameters over TNT, with 18 exceeding RDX performance. Impact sensitivity analysis revealed favorable safety profiles, with all di‐ and tri‐substituted nitramines less sensitive than RDX. Mayer bond order analysis of all 88 compounds identified the trigger bonds for each compound and class, revealing distinct lability ranges for each explosophore:ONO 2 (0.490–0.728), CNO 2 (0.737–0.789), HNNO 2 (0.784–0.892), CNHNO 2 (0.917–0.944), and CN 3 (1.018–1.102). Aromaticity analysis () showed that explosophore substitution systematically reduces aromatic character relative to the unsubstituted scaffolds, a trend correlated with molecular electrostatic potential (MEP) redistribution and associated with higher density, heat of detonation, detonation velocity, and detonation pressure. After a combined analysis of detonation performance, impact sensitivity profiles, trigger bond lability, and bond dissociation enthalpies, three compounds (IA345, IA356, and TA356) emerged as the most promising candidates, exhibiting heat of formation > 303.7 kJ mol −1 , oxygen balance > −28.2%, density > 1.85 g cm −3 , detonation velocity > 8.76 km s −1 , and detonation pressure > 33.17 GPa.

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Publication Details

Journal
Journal of Computational Chemistry
Published
2026-09-03
DOI
https://doi.org/10.1002/jcc.70490
Primary Topic
Energetic Materials and Combustion
Type
article
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Computational Design and Theoretical Evaluation of Novel Heterocyclic Energetic Materials Based on 5‐H‐Imidazo‐[4,5‐c]‐Pyridazine and 1,2,4‐Triazolo‐[4,3‐a]‐Pyrazine Scaffolds

Danillo Fernando Vianna Cantini, Aline Cardoso Anastácio, Nathália Magalhães Paixão Rosa, Luciana Amorim da Silva
Journal of Computational Chemistry
Energetic Materials and Combustion
article

Computational Design and Theoretical Evaluation of Novel Heterocyclic Energetic Materials Based on 5‐H‐Imidazo‐[4,5‐c]‐Pyridazine and 1,2,4‐Triazolo‐[4,3‐a]‐Pyrazine Scaffolds

Danillo Fernando Vianna Cantini, Aline Cardoso Anastácio, Nathália Magalhães Paixão Rosa, Luciana Amorim da Silva
article en

Abstract

ABSTRACT Novel energetic materials based on 5‐H‐imidazo‐[4,5‐c]‐pyridazine and 1,2,4‐triazolo‐[4,3‐a]‐pyrazine scaffolds, modified with explosophore groups (NO 2 , NHNO 2 , N 3 , and ONO 2 ), were theoretically designed and evaluated by DFT at the B3LYP/def2‐TZVPP // B3LYP/6‐311G(d,p) level. Nitramino derivatives exhibited the highest chemical stability based on HOMO‐LUMO gap analysis. Heat of formation followed the trend N 3 > NO 2 > NHNO 2 > ONO 2 . Most imidazopyridazine derivatives exceeded RDX density, while all surpassed TNT. All derivatives showed superior detonation parameters over TNT, with 18 exceeding RDX performance. Impact sensitivity analysis revealed favorable safety profiles, with all di‐ and tri‐substituted nitramines less sensitive than RDX. Mayer bond order analysis of all 88 compounds identified the trigger bonds for each compound and class, revealing distinct lability ranges for each explosophore:ONO 2 (0.490–0.728), CNO 2 (0.737–0.789), HNNO 2 (0.784–0.892), CNHNO 2 (0.917–0.944), and CN 3 (1.018–1.102). Aromaticity analysis () showed that explosophore substitution systematically reduces aromatic character relative to the unsubstituted scaffolds, a trend correlated with molecular electrostatic potential (MEP) redistribution and associated with higher density, heat of detonation, detonation velocity, and detonation pressure. After a combined analysis of detonation performance, impact sensitivity profiles, trigger bond lability, and bond dissociation enthalpies, three compounds (IA345, IA356, and TA356) emerged as the most promising candidates, exhibiting heat of formation > 303.7 kJ mol −1 , oxygen balance > −28.2%, density > 1.85 g cm −3 , detonation velocity > 8.76 km s −1 , and detonation pressure > 33.17 GPa.

Journal of Computational ChemistryVol. 47(23)
University of Pardubice (CZ), Universidade Federal Rural do Rio de Janeiro (BR), Military Institute of Engineering (BR)
Openalex Percentile: Top 18%
Energetic Materials and Combustion
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