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      Aminoacetonitrile as precursor for nitrogen rich stable and insensitive asymmetric N-methylene-C linked tetrazole-based energetic compounds

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          Abstract

          This work demonstrates the synthesis and characterization of nitrogen rich stable and insensitive N-methylene-C Linked tetrazole-based energetic compounds.

          Abstract

          Reaction of aminoacetonitrile with cyanogen azide resulted in acetonitrile derivative of amino(tetrazole), 1, which on further reaction with sodium azide in the presence of ammonium chloride resulted in compound 2 with N-methylene-C bridged tetrazole and amino-tetrazole moieties. Reaction of 2 with 100% nitric acid resulted in N-(1-((1 H-tetrazol-5-yl)methyl)-1 H-tetrazol-5(4 H)-ylidene)nitramide ( 4) having N-methylene-C bridged nitroimino-tetrazole and tetrazole moieties. Various energetic salts based on these three types of tetrazole derivatives (tetrazole, amino-tetrazole and nitroimino-tetrazole) in 2 and 4 were obtained. All the compounds were thoroughly characterized by IR, NMR [ 1H, 13C{ 1H}, 15N], elemental analysis, and differential scanning calorimetry (DSC). Some of them were also structurally characterized with single-crystal X-ray diffraction studies. Heats of formation and detonation performances for all the energetic compounds were calculated using Gaussian 03 and EXPLO5 v6.01 programs, respectively.

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          Most cited references43

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          Azole-Based Energetic Salts

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            Pushing the limits of energetic materials – the synthesis and characterization of dihydroxylammonium 5,5′-bistetrazole-1,1′-diolate

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              Advances in science and technology of modern energetic materials: an overview.

              Energetic materials such as explosives, propellants and pyrotechnics are widely used for both civilian and military explosives applications. The present review focuses briefly on the synthesis aspects and some of the physico-chemical properties of energetic materials of the class: (a) aminopyridine-N-oxides, (b) energetic azides, (c) high nitrogen content energetic materials, (d) imidazoles, (e) insensitive energetic materials, (f) oxidizers, (g) nitramines, (h) nitrate esters and (i) thermally stable explosives. A brief comment is also made on the emerging nitration concepts. This paper also reviews work done on primary explosives of current and futuristic interest based on energetic co-ordination compounds. Lead-free co-ordination compounds are the candidates of tomorrow's choice in view of their additional advantage of being eco-friendly. Another desirable attribute of lead free class of energetic compounds is the presence of almost equivalent quantity of fuel and oxidizer moieties. These compounds may find wide spectrum of futuristic applications in the area of energetic materials. The over all aim of the high energy materials research community is to develop the more powerful energetic materials/explosive formulations/propellant formulations in comparison to currently known benchmark materials/compositions. Therefore, an attempt is also made to highlight the important contributions made by the various researchers in the frontier areas energetic ballistic modifiers, energetic binders and energetic plasticizers.
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                Author and article information

                Journal
                JMCAET
                Journal of Materials Chemistry A
                J. Mater. Chem. A
                Royal Society of Chemistry (RSC)
                2050-7488
                2050-7496
                2017
                2017
                : 5
                : 32
                : 16767-16775
                Affiliations
                [1 ]Department of Chemistry
                [2 ]University of Idaho
                [3 ]Moscow
                [4 ]USA
                [5 ]Naval Research Laboratory
                [6 ]Washington
                Article
                10.1039/C7TA05394K
                d030800e-ead9-4890-91b5-cfd087c092d7
                © 2017
                History

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