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Microfibrillated Cellulose Reinforced Poly(vinyl alcohol) Composites

机译:微纤化纤维素增强聚(乙烯醇)复合材料

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Microfibrillated cellulose (MFC) was successfully prepared from lyocell fibers using combined homogenization and sonication treatments. MFC fibrils with a mean diameter of ~365 nm were observed, after the lyocell fibers with diameters of ~10 μm were mechanically treated for 60 min. Poly(vinyl alcohol) (PVA) composites reinforced with MFC were then fabricated using a solvent casting method. Physical and mechanical properties of the MFC reinforced PVA composites were investigated. An increase of ~13 and ~34% of tensile strength and Young's modulus was observed for the 3 wt% MFC reinforced composites, compared to those of the pure PVA. Raman spectroscopy was also employed to study the deformation micromechanics of the MFC reinforced PVA composites. The position of the Raman peak initially located at ~1095 cm~(-1), corresponding to the C-O ring stretching and C-O-C glycosidic bond stretching modes, was recorded. During tensile deformation, this peak was observed to shift towards a lower wavenumber position, indicating stress-transfer between the resin and the fibrils.
机译:使用组合的均质化和超声处理成功由Lyocell纤维制备微纤化纤维素(MFC)。观察到平均直径〜365nm的MFC原纤维,在机械处理直径〜10μm的淋巴细胞纤维之后60分钟。然后使用溶剂浇铸方法制造加强MFC的聚(乙烯醇)(PVA)复合材料。研究了MFC增强PVA复合材料的物理和力学性能。与纯PVA相比,对于3wt%MFC增强复合材料,观察到3wt%MFC增强复合材料的〜13和〜34%的抗拉强度和杨氏模量的增加。还采用拉曼光谱研究MFC增强PVA复合材料的变形微机械。记录最初位于〜1095cm〜(-1)的拉曼峰的位置,对应于C-O环拉伸和C-O-C糖苷键拉伸模式。在拉伸变形期间,观察到该峰值以向下波数位置转变,表明树脂和原纤维之间的应力转移。

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