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Biodegradation of Halloysite Nanotubes-Polyester Nanocomposites Exposed to Short Term Seawater Immersion

机译:暴露于短期海水中的埃洛石纳米管-聚酯纳米复合材料的生物降解

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摘要

Halloysite nanotubes (HNTs)-polyester nanocomposites with four different concentrations were produced using solution casting technique and the biodegradation effect of short-term seawater exposure (120 h) was studied. Monolithic polyester was observed to have the highest seawater absorption with 1.37%. At 0.3 wt % HNTs reinforcement, the seawater absorption dropped significantly to the lowest value of 0.77% due to increase of liquid diffusion path. For samples tested in dry conditions, the Tg, storage modulus, tensile properties and flexural properties were improved. The highest improvement of Tg was from 79.3 to 82.4 °C (increase 3.1 °C) in the case of 0.3 wt % HNTs. This can be associated with the exfoliated HNTs particles, which restrict the mobility of polymer chains and thus raised the Tg. After seawater exposure, the Tg, storage modulus, tensile properties and flexural properties of polyester and its nanocomposites were decreased. The Young’s modulus of 0.3 wt % HNTs-polyester dropped 20% while monolithic polyester dropped up to 24% compared to their values in dry condition. Apart from that, 29% flexural modulus reduction was observed, which was 18% higher than monolithic polyester. In contrast, fracture toughness and surface roughness increased due to plasticization effect. The presence of various microbial communities caused gradual biodegradation on the microstructure of the polyester matrix as also evidently shown by SEM images.
机译:采用溶液流延技术制备了四种不同浓度的埃洛石纳米管(HNTs)-聚酯纳米复合材料,并研究了短期海水暴露(120 h)的生物降解作用。整体聚酯的海水吸收率最高,为1.37%。在0.3 wt%的HNTs增强下,由于液体扩散路径的增加,海水吸收率显着下降至0.77%的最低值。对于在干燥条件下测试的样品,Tg,储能模量,拉伸性能和挠曲性能得到了改善。在0.3 wt%HNT的情况下,Tg的最高提高是从79.3至82.4°C(增加3.1°C)。这可能与剥落的HNTs颗粒有关,后者限制了聚合物链的移动性,从而提高了Tg。海水暴露后,聚酯及其纳米复合材料的Tg,储能模量,拉伸性能和弯曲性能降低。与干燥条件下的数值相比,0.3%(重量)HNTs-聚酯的杨氏模量下降了20%,而整体聚酯下降了24%。除此之外,观察到弯曲模量降低29%,这比整体聚酯高18%。相反,由于增塑作用,断裂韧性和表面粗糙度增加。各种微生物群落的存在导致聚酯基质的微观结构逐渐生物降解,这也可以通过SEM图像清楚地看出。

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