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首页> 外文期刊>Journal of Polymers and the Environment >Thermal and Mechanical Properties of CO_2-Based Biodegradable Poly(cyclohexene carbonate)/Organically Modified Layered Zinc Phenylphosphonate Nanocomposites
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Thermal and Mechanical Properties of CO_2-Based Biodegradable Poly(cyclohexene carbonate)/Organically Modified Layered Zinc Phenylphosphonate Nanocomposites

机译:基于CO_2的生物可降解聚碳酸环己酯/有机改性层状苯基膦酸锌纳米复合材料的热力学性能

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摘要

A new sustainable composite material was fabricated using CO2-based poly(cyclohexene carbonate) (PCHC) and organically modified layered zinc phenylphosphonate (m-PPZn) via a solution mixing process. Analysis by wide-angle X-ray diffraction (WAXD) showed that the interlayer spacing of the m-PPZn was enlarged to 30.4 angstrom. The morphology of the PCHC/m-PPZn nanocomposites was characterized by transmission electron microscopy and WAXD, which revealed that the layered materials were partially delaminated and randomly dispersed in the PCHC matrix. The enhancement of the dynamic mechanical properties of the 1wt% PCHC/m-PPZn nanocomposite at 80 degrees C was approximately 114% relative to those of the neat PCHC matrix. The thermal properties of the PCHC/m-PPZn nanocomposites characterized using thermogravimetric analysis were substantially improved upon incorporation of m-PPZn. With the addition of 0.25wt% m-PPZn into the PCHC matrix, the decomposition temperature associated with 10wt% loss of the nanocomposites was substantially increased by approximately 24 degrees C compared with that of the PCHC matrix. The isothermal degradation data demonstrated that the activation energy of the composites was higher than that of the PCHC. This finding was attributed to the addition of m-PPZn to PCHC increasing the thermal energy required for degradation, thus inducing a reduction in the degradation rate and an increase in the residual weight for the PCHC/m-PPZn nanocomposites.
机译:通过基于CO2的聚环己烯碳酸酯(PCHC)和有机改性的层状苯基膦酸锌(m-PPZn),通过溶液混合工艺制造了一种新型的可持续复合材料。通过广角X射线衍射(WAXD)分析表明,m-PPZn的层间间隔扩大到30.4埃。 PCHC / m-PPZn纳米复合材料的形态通过透射电子显微镜和WAXD表征,表明层状材料部分分层并随机分散在PCHC基质中。 1wt%PCHC / m-PPZn纳米复合材料在80摄氏度时的动态力学性能增强相对于纯PCHC基质的动态力学性能提高了约114%。引入m-PPZn后,使用热重分析表征的PCHC / m-PPZn纳米复合材料的热性能得到了显着改善。与PCHC基质相比,在PCHC基质中添加0.25wt%的间-PPZn时,与纳米复合材料损失10wt%相关的分解温度实质上提高了约24℃。等温降解数据表明,复合材料的活化能高于PCHC。该发现归因于向PCHC中添加m-PPZn会增加降解所需的热能,从而导致PCHC / m-PPZn纳米复合材料的降解速率降低和残留重量增加。

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