材料科学
纳米-
碳酸钙
超临界二氧化碳
超临界流体
聚合物
碳酸丙烯酯
复合材料
化学工程
流变学
热分解
玻璃化转变
二氧化碳
化学
有机化学
物理化学
工程类
电极
电化学
作者
Peng Yu,Hao‐Yang Mi,An Huang,Xian Liu,Bin‐Yi Chen,Shuidong Zhang,Xiangfang Peng
摘要
ABSTRACT Biodegradable polymer foams are attracting extensive attention in both academic and industrial fields. In this study, an emerging biodegradable polymer, poly(propylene carbonate) (PPC), was compounded with nano calcium carbonate (nano‐CaCO 3 ) and foamed via supercritical carbon dioxide for the first time. Four concentrations of nano‐CaCO 3 , 1, 3, 5, and 10 wt %, were used and the thermal properties of PPC/nano‐CaCO 3 composites were investigated. The glass‐transition temperature and thermal decomposition temperature of the PPC/nano‐CaCO 3 composites increased with the addition of nano‐CaCO 3 . The morphologies of the PPC/nano‐CaCO 3 composites and the rheological results showed that homogeneous dispersions of nano‐CaCO 3 and percolated nano‐CaCO 3 networks were achieved at a nano‐CaCO 3 content of 3 wt %. Therefore, the finest cell diameter (3.13 μm) and highest cell density (6.02 × 10 9 cells/cm 3 ) were obtained at the same nano‐CaCO 3 content. The cell structure dependences of PPC and PPC with a nano‐CaCO 3 content of 3 wt % (PPC‐3) foams on the foaming pressure and temperature were investigated as well. The results suggested that the cell structure of PPC‐3 was more stable at different foaming conditions due to the networks of nano‐CaCO 3 . Moreover, the change in pressure was more influential on the cell structure than the temperature. © 2015 Wiley Periodicals, Inc. J. Appl. Polym. Sci. 2015 , 132 , 42248.
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