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      Predicting the reactivity of energetic materials: an ab initio multi-phonon approach

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          Abstract

          The impact sensitivity of energetic materials is successfully predicted using an ab initio model based on the concepts of phonon up-pumping.

          Abstract

          The ease with which an energetic material (explosives, propellants, and pyrotechnics) can be initiated is a critical parameter to assess their safety and application. Impact sensitivity parameters are traditionally derived experimentally, at great cost and risk to safety. In this work we explore a fully ab initio approach based on concepts of vibrational energy transfer to predict impact sensitivities for a series of chemically, structurally and energetically diverse molecular materials. The quality of DFT calculations is assessed for a subset of the materials by comparison with experimental inelastic neutron scattering spectra (INS). A variety of models are considered, including both qualitative and quantitative analysis of the vibrational spectra. Excellent agreement against experimental impact sensitivity is achieved by consideration of a multi-phonon ladder-type up-pumping mechanism that includes both overtone and combination pathways, and is improved further by the added consideration of temperature. This fully ab initio approach not only permits ranking of energetic materials in terms of their impact sensitivity but also provides a tool to guide the targeted design of advanced energetic compounds with tailored properties.

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                Author and article information

                Contributors
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                Journal
                JMCAET
                Journal of Materials Chemistry A
                J. Mater. Chem. A
                Royal Society of Chemistry (RSC)
                2050-7488
                2050-7496
                August 20 2019
                2019
                : 7
                : 33
                : 19539-19553
                Affiliations
                [1 ]EaStCHEM School of Chemistry
                [2 ]Centre for Science at Extreme Conditions
                [3 ]University of Edinburgh
                [4 ]Edinburgh
                [5 ]UK
                [6 ]ISIS Neutron and Muon Source, STFC
                [7 ]Rutherford Appleton Laboratory
                [8 ]Didcot
                [9 ]Department of Chemistry
                [10 ]University of Sheffield
                [11 ]Sheffield S3 7HF
                [12 ]Defence Science and Technology Laboratory (DSTL)
                [13 ]Porton Down
                [14 ]Salisbury SP4 0JQ
                Article
                10.1039/C9TA06209B
                aedd4272-d376-4f1b-8b64-31fc75e5ab90
                © 2019

                http://creativecommons.org/licenses/by/3.0/

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