Peng Cheng-Hsiung, Su Pin-Hsien, Li Jin-Shuh, Ke Yan-Jun
Department of Applied Materials Science and Technology, Minghsin University of Science and Technology, Hsinchu 304, Taiwan.
Department of Chemical and Materials Engineering, Chung Cheng Institute of Technology, National Defense University, Taoyuan 335, Taiwan.
Materials (Basel). 2025 Jun 20;18(13):2928. doi: 10.3390/ma18132928.
In this study, a one-pot, ultrasonic-assisted solvothermal method was successfully employed to prepare three copper-containing compounds: copper benzene-1,3,5-tricarboxylate (Cu(BTC)), copper powder, and copper-metalized activated carbon (Cu@AC). This method is efficient and safe and has potential for use in scalable production. The characteristics of the resulting products were analyzed using various techniques, including X-ray diffraction (XRD), scanning electron microscopy (SEM), specific surface area measurement along with pore size distribution, and thermogravimetric analysis-differential scanning calorimetry (TG-DSC). Additionally, the catalytic effects of these products on the thermal decomposition of ammonium perchlorate (AP) were evaluated. All three substances were found to lower the thermal decomposition temperature of AP and enhance heat release. Cu(BTC) demonstrated exceptional catalytic performance and compatibility with AP, as shown using the vacuum stability test (VST). The thermal analysis results indicated that the thermal decomposition temperature and apparent activation energy of AP decreased from ~442 °C to around 340 °C and from ~207 kJ mol to approximately 128 kJ mol, respectively, when 3 wt% Cu(BTC) was contained in AP. Moreover, the heat released via the exothermic decomposition of AP increased from 740 J g to1716 J g. A possible reaction mechanism is proposed based on the evolved gas analysis (EGA) findings to explain the observed catalytic effects.
在本研究中,成功采用一锅法超声辅助溶剂热法制备了三种含铜化合物:苯-1,3,5-三甲酸铜(Cu(BTC))、铜粉和铜负载活性炭(Cu@AC)。该方法高效且安全,具有规模化生产的潜力。使用多种技术对所得产物的特性进行了分析,包括X射线衍射(XRD)、扫描电子显微镜(SEM)、比表面积测量以及孔径分布,还有热重分析-差示扫描量热法(TG-DSC)。此外,评估了这些产物对高氯酸铵(AP)热分解的催化作用。发现所有三种物质均能降低AP的热分解温度并增强热释放。如真空稳定性测试(VST)所示,Cu(BTC)表现出卓越的催化性能以及与AP的相容性。热分析结果表明,当AP中含有3 wt%的Cu(BTC)时,AP的热分解温度和表观活化能分别从约442 °C降至约340 °C,从约207 kJ mol降至约128 kJ mol。此外,AP放热分解释放的热量从740 J g增加到1716 J g。基于逸出气体分析(EGA)结果提出了一种可能的反应机理来解释观察到的催化效果。