聚磷酸铵
阻燃剂
化学工程
材料科学
纤维素
傅里叶变换红外光谱
热重分析
聚磷酸盐
复合材料
化学
磷酸盐
有机化学
工程类
作者
Lei Yu,Guochao Yang,Xuanye Wang,Jian Fang
标识
DOI:10.1016/j.indcrop.2023.117551
摘要
In order to address the issues of poor smoke suppression, substrate compatibility, and strong hygroscopicity associated with ammonium polyphosphate, this study employed an in-situ precipitation method to construct a double-shell ammonium polyphosphate microcapsule, with ethyl cellulose and nano-silica serving as shell materials. The microcapsule exhibited improved flame retardancy and fire safety compared to ammonium polyphosphate alone, as evidenced by significant reductions in both maximum heat release rate and total heat release, as determined by thermal-gravimetric analysis (TGA), microcalorimetry (MCC), and vertical burning tests (VBT). Furthermore, the real-time Fourier transform infrared (RT-FTIR), scanning electron microscopy (SEM), and Raman spectrum analyses revealed that the modified kraft paper produced a cross-linked network structure formed by the silica-based substrate and cellulose during combustion, which facilitated the formation of a carbon layer and provided sustained flame retardancy. Physical and hygroscopicity tests demonstrated that the microcapsule exhibited superior compatibility with substrates. Overall, these findings demonstrate that microencapsulation of ammonium polyphosphate effectively addresses the challenges of compatibility and hygroscopicity, while enhancing its flame-retardant efficacy, thus significantly advancing its application in flame retardant materials.
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