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首页> 外文期刊>Journal of Polymer Research >Preparation of biodegradable poly(butylene succinate)/halloysite nanotube nanocomposite foams using supercritical CO2 as blowing agent
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Preparation of biodegradable poly(butylene succinate)/halloysite nanotube nanocomposite foams using supercritical CO2 as blowing agent

机译:以超临界CO2为发泡剂制备可生物降解的聚丁二酸丁二醇酯/卤化物纳米管纳米复合泡沫

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摘要

Biodegradable poly(butylene succinate) (PBS) was melt compounded with halloysite nanotube (HNT) to prepare PBS/HNT nanocomposites, and both pure PBS and PBS/HNT nanocomposites were foamed successfully using supercritical carbon dioxide as a physical blowing agent. The cell morphologiesshowed that the cell size decreased, and both cell density and volume expansion ratio increased with the addition of HNT. Within the HNT content used in this work (1, 3, 5, and 7 wt.%), the content of 5 wt.% was found to be the one that lead to the smallest cell size and highest cell density and volume expansion ratio. In addition to the HNT content, both saturation temperature and saturation pressure were found to significantly influence the cell morphology. Higher saturation pressure led to smaller cell size and higher volume expansion ratio. Interestingly, a close-celled to interconnect open-celled morphology transition occurred for PBS/HNT nanocomposites at a saturation temperature of 120 A degrees C. The formation of interconnect open-celled morphology was mainly attributed to the stress induced by the HNT in the cell solidification process. With the increase of HNT content, saturation temperature and saturation pressure, the enthalpy of fusion of the foamed samples increased.
机译:将可生物降解的聚丁二酸丁二酯(PBS)与埃洛石纳米管(HNT)熔融混合以制备PBS / HNT纳米复合材料,并使用超临界二氧化碳作为物理发泡剂将纯PBS和PBS / HNT纳米复合材料成功发泡。细胞形态显示,随着HNT的加入,细胞大小减小,细胞密度和体积膨胀率均增加。在这项工作中使用的HNT含量(1、3、5和7 wt。%)内,发现5 wt。%的含量导致最小的泡孔尺寸以及最高的泡孔密度和体积膨胀率。除了HNT含量,饱和温度和饱和压力均会显着影响细胞形态。较高的饱和压力导致较小的孔尺寸和较高的体积膨胀率。有趣的是,PBS / HNT纳米复合材料在饱和温度为120 A时发生了闭孔到互连的开孔形态转变。互连开孔形态的形成主要归因于细胞中HNT诱导的应力凝固过程。随着HNT含量,饱和温度和饱和压力的增加,泡沫样品的熔融焓增加。

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