TY - JOUR
T1 - Laser-induced decomposition mechanism of novel polynitrogen energetic material 4,4′-azobis (1,2,4-triazole) (ATRZ)
T2 - Time-resolved evolution of gaseous products
AU - Yang, Xiaoning
AU - Zhang, Xinyu
AU - Pan, Qi
AU - Zhao, Wanzhu
AU - Wang, Yazi
AU - Guo, Xueyong
AU - Liu, Ruibin
N1 - Publisher Copyright:
© 2026 China Ordnance Society. Publishing services by Elsevier B.V. on behalf of KeAi Communications Co. Ltd. This is an open access article under the CC BY-NC-ND license. http://creativecommons.org/licenses/by-nc-nd/4.0/
PY - 2026
Y1 - 2026
N2 - The novel polynitrogen energetic material 4,4′-azobis(1,2,4-triazole) (ATRZ) has attracted significant research interest due to its high nitrogen content and excellent detonation performance. However, its rapid decomposition mechanism under laser irradiation, particularly the time-resolved evolution of gaseous products, remains unclear. This study presents a comprehensive investigation into the decomposition kinetics and gaseous products evolution of ATRZ under laser irradiation in both air and argon atmospheres, utilizing synchronized time-resolved schlieren imaging and laser induced plasma spectroscopy (LIPS). In an air atmosphere, the primary decomposition products are N2, CO, CO2, NO, and NO2. Among them, CO2 has the highest concentration, which confirms the oxidative participation of atmospheric oxygen. A distinct temporal evolution is observed, wherein nitrogen-containing species (N2, NO, and NO2) are generated prior to carbon-containing and hydrogen-containing products. Transient spectroscopic signatures of C2 and CN radicals are detected during the initial reaction stage, indicative of incomplete molecular dissociation and subsequent fragment recombination, followed by their oxidation into CO, CO2, NO, and NO2 compounds. In contrast, under an inert argon environment, the absence of oxidative pathways results in sustained C2 and CN emissions alongside negligible CO2 formation. Schlieren imaging reveals a self-sustained combustion process occurring on millisecond timescales exclusively in air, which is attributed to sustained oxidation of carbon-enriched clusters, a phenomenon entirely absent under argon. The findings highlight the crucial impact of ambient oxygen on the decomposition mechanism and energy release dynamics of ATRZ, offering fundamental insights into the environmental dependence of energetic material degradation pathways.
AB - The novel polynitrogen energetic material 4,4′-azobis(1,2,4-triazole) (ATRZ) has attracted significant research interest due to its high nitrogen content and excellent detonation performance. However, its rapid decomposition mechanism under laser irradiation, particularly the time-resolved evolution of gaseous products, remains unclear. This study presents a comprehensive investigation into the decomposition kinetics and gaseous products evolution of ATRZ under laser irradiation in both air and argon atmospheres, utilizing synchronized time-resolved schlieren imaging and laser induced plasma spectroscopy (LIPS). In an air atmosphere, the primary decomposition products are N2, CO, CO2, NO, and NO2. Among them, CO2 has the highest concentration, which confirms the oxidative participation of atmospheric oxygen. A distinct temporal evolution is observed, wherein nitrogen-containing species (N2, NO, and NO2) are generated prior to carbon-containing and hydrogen-containing products. Transient spectroscopic signatures of C2 and CN radicals are detected during the initial reaction stage, indicative of incomplete molecular dissociation and subsequent fragment recombination, followed by their oxidation into CO, CO2, NO, and NO2 compounds. In contrast, under an inert argon environment, the absence of oxidative pathways results in sustained C2 and CN emissions alongside negligible CO2 formation. Schlieren imaging reveals a self-sustained combustion process occurring on millisecond timescales exclusively in air, which is attributed to sustained oxidation of carbon-enriched clusters, a phenomenon entirely absent under argon. The findings highlight the crucial impact of ambient oxygen on the decomposition mechanism and energy release dynamics of ATRZ, offering fundamental insights into the environmental dependence of energetic material degradation pathways.
KW - Gaseous products
KW - LIPS
KW - Polynitrogen energetic material
KW - Time-resolved evolution
UR - https://www.scopus.com/pages/publications/105037536712
U2 - 10.1016/j.dt.2026.03.008
DO - 10.1016/j.dt.2026.03.008
M3 - Article
AN - SCOPUS:105037536712
SN - 2096-3459
JO - Defence Technology
JF - Defence Technology
ER -