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Focus on Gradientwise Control of the Surface Acetylationof Cellulose Nanocrystals to Optimize Mechanical Reinforcement forHydrophobic Polyester-Based Nanocomposites

机译:专注于表面乙酰化的梯度控制纤维素纳米晶体优化机械增强疏水性聚酯基纳米复合材料

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摘要

Surface acetylation of cellulose nanocrystals (CNCs) imposes an important effect on CNC-related mechanical enhancement of hydrophobic polyester-based composites, of which interfacial properties still need optimization. In the present work, the surface acetylation of CNCs was adjusted as a gradient of above ca. 10%. Then, we found that the surface energy of acetylated CNCs (ACNs) decreased and thus their hydrophobicity increased as the surface acetylation degree increased. Hence, the ACNs with varied degrees of acetyl substitution (DSsurface-acetyl) values were attempted to reinforce a kind of hydrophobic polyester, poly(3-hydroxybutyrate-co-4-hydroxybutyrate) (PHB). The results indicated that a smaller discrepancy in the surface energy between the CNC surface and the PHB matrix was obtained, as the surface acetylation degree increased, and then, the affinity and interaction between the two components increased, which improved the homogeneous distribution of ACNs in the PHB matrix. Besides, in comparison to the nanocomposites filled with 15 wt % unmodified CNCs, the tensile strength of those with ACNs of 62.9% DSsurface-acetyl was 43.3% higher. This study was the first attempt to adjust the surface substitution degrees with a gradient profile for the surfacemodification of CNCs and prove that acetylation gradient control isan effective and facile strategy to optimize the mechanical properties.
机译:纤维素纳米晶体(CNC)的表面乙酰化对疏水性聚酯基复合材料的CNC相关机械增强产生重要影响,其中界面性能仍需要优化。在目前的工作中,CNCs的表面乙酰化被调整为约大于的梯度。 10%。然后,我们发现乙酰化的CNCs(ACNs)的表面能下降,因此它们的疏水性随着表面乙酰化程度的增加而增加。因此,尝试了具有不同程度的乙酰基取代度(DS表面-乙酰基)值的ACN来增强一种疏水性聚酯,聚(3-羟基丁酸酯-co-4-羟基丁酸酯)(PHB)。结果表明,随着表面乙酰化程度的增加,CNC表面与PHB基体之间的表面能差异变小,然后两个组分之间的亲和力和相互作用增加,从而改善了ACN在CB中的均匀分布。 PHB矩阵。另外,与填充有15重量%未改性的CNC的纳米复合材料相比,具有62.9%DS表面乙酰基的ACN的纳米复合材料的拉伸强度高43.3%。这项研究是首次尝试使用梯度梯度调整表面替代度修改CNC并证明乙酰化梯度控制是一种有效而简便的策略来优化机械性能。

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