Preparation and property assessment of neat lignocellulose nanofibrils (LCNF) and their composite films

被引:0
作者
Thomas Horseman
Mehdi Tajvidi
Cherif I. K. Diop
Douglas J. Gardner
机构
[1] Rose-Hulman Institute of Technology,School of Forest Resources and Advanced Structures and Composites Center
[2] University of Maine,School of Forest Resources
[3] University of Maine,School of Forest Resources and Advanced Structures and Composites Center
[4] University of Maine,undefined
来源
Cellulose | 2017年 / 24卷
关键词
Mechanical fibrillation; Lignocellulose nanofibrils; Composite films; Mechanical properties; Thermal stability;
D O I
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中图分类号
学科分类号
摘要
Lignocellulose nanofibrils (LCNF) were produced from thermo-mechanical pulp (TMP) using a micro-grinder and were characterized with respect to fiber diameter and thermal stability. The initial water content in the TMP affected the defibrillation process and longer grinding time was necessary for the air-dried TMP, resulting in LCNF with higher fibril diameter. As compared to the reference cellulose nanofibrils (CNF) produced through a refining process, LCNF was less thermally stable and started to degrade at a temperature that was 30 °C lower than that of CNF. LCNF obtained from the never-dried TMP was combined with various additives (10 wt%) to produce composite films. The neat LCNF and composite films did not reach the mechanical properties of the neat CNF film that was evaluated as reference. However, the addition of poly(vinyl alcohol) (PVA) at 10 wt% on a dry basis did cause a 46 and 25% increase in tensile strength and elastic modulus, respectively. Other additives including cellulose nanocrystals, bentonite and CNF were also found to increase to some extent the Young’s modulus and ductility of the LCNF composite films whereas the addition of talc did not improve the film performance. Water absorption of neat LCNF films was lower than the reference CNF and was negatively affected by the addition of PVA.
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页码:2455 / 2468
页数:13
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