Issue 9, 2024

Obtaining superior high-density fused-ring energetic materials via the introduction of carbonyl, o-NH2–NO2 and nitroamino groups

Abstract

Two carbonyl and o-NH2–NO2-containing energetic materials and their analogues were effectively designed, synthesized and fully characterized with multinuclear NMR, IR and elemental analyses. Their structures were also further confirmed via X-ray diffraction. Among them, compound 7 exhibits good potential for application as a secondary explosive with extremely high density (2.04 g cm−3), good sensitivity (IS > 40 J, FS > 360 N), and excellent calculated detonation performance (Dv = 8943 m s−1, P = 35.0 GPa). Furthermore, a detailed comparative study based on X-ray diffraction, Hirshfeld surfaces and 2D fingerprint plots among compounds 4, 7 and 9 has demonstrated that the density and detonation performance could be effectively improved via introducing a carbonyl group into fused-ring compounds. More importantly, the sensitivity of the resulting energetic materials did not deteriorate. Obviously, this strategy via introducing carbonyl, o-NH2–NO2 and nitroamino groups into fused-ring energetic compounds will help in the design of next-generation high-energy and insensitive fused-ring energetic materials.

Graphical abstract: Obtaining superior high-density fused-ring energetic materials via the introduction of carbonyl, o-NH2–NO2 and nitroamino groups

Supplementary files

Article information

Article type
Paper
Submitted
18 Dec 2023
Accepted
26 Jan 2024
First published
30 Jan 2024

Dalton Trans., 2024,53, 4035-4040

Obtaining superior high-density fused-ring energetic materials via the introduction of carbonyl, o-NH2–NO2 and nitroamino groups

X. Guo, Y. Feng, S. Zhi, Y. Fu, Y. Liu, Q. Liu and H. Gao, Dalton Trans., 2024, 53, 4035 DOI: 10.1039/D3DT04237E

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