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Researchers Develop Two EMOFs to Enhance Ammonium Perchlorate Decomposition

In a recent study published in Small, researchers have developed two energetic metal-organic frameworks (EMOFs) that significantly lower the thermal decomposition temperature of ammonium perchlorate (AP),...

Chinese Academy of Sciences (CAS) 中国科学院计算机网络信息中心

In a recent study published in Small , researchers have developed two energetic metal-organic frameworks (EMOFs) that significantly lower the thermal decomposition temperature of ammonium perchlorate (AP), concentrate its heat release, and contribute additional energy during decomposition.

Using a structural co-assembly strategy, the researchers combined nitrogen-rich aromatic ligands, strongly reductive anions, and metal nodes to synthesize the two EMOFs. Adding 5 wt.% of one compound to AP reduced its high-temperature decomposition peak by 116 °C and narrowed the exothermic peak width from 141 °C to 10 °C.

The study was conducted by a research team led by Profs. GUO Guocong, ZHENG Fakun, and XU Jiangang from the Fujian Institute of Research on the Structure of Matter of the Chinese Academy of Sciences. Ammonium perchlorate is an important oxidizer in composite solid propellants because of its high oxygen content, excellent thermal stability, and high energy output.

However, its high thermal decomposition temperature, dispersed exothermic process, and insufficient heat release limit the development of high-performance solid propellants. Previous approaches have included nanoscale metal oxides, which can increase contact area and catalytic activity but tend to aggregate, and inert organic dyes, which can enhance AP decomposition and mechanical safety but often result in insufficient and dispersed heat release.

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