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Updated: Aug 28, 2026

Preparation and Reactivity of Gasless Nanostructured Energetic Materials
Published on: April 2, 2015
Nitrocellulose as a Polymeric Energetic Material: Multiscale Decomposition Kinetics, Stabilization Strategies, and
1Institute of Combustion Problems, 172 Bogenbay Batyr Street, Almaty 050012, Kazakhstan.
Abstract:
Nitrocellulose (NC) is a long-established energetic polymer whose autocatalytic NOx-driven degradation and conversion-dependent decomposition kinetics remain challenges for thin-film micro-ignition systems. This review examines NC as an energetic polymeric binder and film-forming matrix in selected nanothermite-containing formulations and micro-igniter architectures. It evaluates reported effects of formulation composition, stabilizers, nanothermite additives, deposition route, film architecture, and device geometry on thermal behavior, ignition response, safety, and storage-related limitations. Nitrogen content, molecular-weight information, crystallinity, and morphology are treated as formulation-specific characterization data rather than universal predictors of nanothermite performance. The review critically assesses Kissinger, Ozawa-Flynn-Wall, Kissinger-Akahira-Sunose, Friedman, advanced Vyazovkin, and distributed activation-energy-model approaches. Single-step kinetic models are generally inadequate for multistep, autocatalytic NC decomposition, whereas isoconversional methods provide more informative apparent activation-energy profiles when applied appropriately. Kinetic parameters obtained using different methods, sample forms, and heating programs should not be directly compared or used alone to predict ignition behavior. The review discusses stabilizers and NC-containing MICs, emphasizing formulation-specific thermal, ignition, processing, safety, and aging outcomes. In nanothermites, NC is usually a minor component functioning mainly as a binder, dispersing matrix, film-forming material, and ignition-coupling component.
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