Nanofibrillated cellulose from Alfa, Eucalyptus and Pine fibres: Preparation, characteristics and reinforcing potential

被引:175
作者
Besbes, Iskander [1 ]
Vilar, Manuel Rei [2 ]
Boufi, Sami [1 ]
机构
[1] Univ Sfax, Lab Sci Mat & Environm, Fac Sci Sfax, Sfax, Tunisia
[2] Univ Paris Diderot, ITODYS, CNRS, UMR7086, F-75205 Paris 13, France
关键词
Nanofibril cellulose; Alfa tenassissima; Eucalyptus; Pine; Nanocomposite; FIBRILLATED CELLULOSE; TEMPO; NANOCOMPOSITES; MICROFIBRILS; NANOFIBERS; OXIDATION; BEHAVIOR;
D O I
10.1016/j.carbpol.2011.06.015
中图分类号
O69 [应用化学];
学科分类号
081704 ;
摘要
Cellulose fibres from Alfa (Alfa tenassissima), Eucalyptus and Pine pulp were fibrillated into nanosized fibrils using the homogenization process. To facilitate the fibrillation process, fibres were previously oxidised under neutral conditions to bring the carboxyl content up to 500 mu mol/g. Comparison of light transmission and viscosity measurements of the ensuing gels showed that Eucalyptus and Pine fibres were more easily-fibrillated, with a yield in nanosized fibrils exceeding 90% after several passes at 600 bar, than Alfa fibres, which exhibit higher resistance to the fibrillation process. This difference in behaviour was ascribed to the higher crystallinity degree of the Alfa fibres. The morphology of the nanofibrillated cellulose (NFC) from the different fibres using FE-SEM observation revealed nanosized fibrils with widths from 5 to 20 nm, roughly the same for the three types. The reinforcing potential of the ensuing three nanofibrillated cellulose was investigated using dynamic mechanical analysis (DMA) from measurements carried out on nanocomposite films prepared by casting a mixture of NFC suspension and a commercial latex of poly(styrene-co-butyl acrylate). (C) 2011 Elsevier Ltd. All rights reserved.
引用
收藏
页码:1198 / 1206
页数:9
相关论文
共 36 条
[1]  
Agarwal U.P., 1999, Advances in Lignocellulosics Characterization, P201
[2]   SEQUENTIAL TREATMENT OF MECHANICAL AND CHEMIMECHANICAL PULPS WITH LIGHT AND HEAT - A RAMAN-SPECTROSCOPIC STUDY [J].
AGARWAL, UP ;
ATALLA, RH ;
FORSSKAHL, I .
HOLZFORSCHUNG, 1995, 49 (04) :300-312
[3]   Isolation and characterization of nanofibers from agricultural residues - Wheat straw and soy hulls [J].
Alemdar, Ayse ;
Sain, Mohini .
BIORESOURCE TECHNOLOGY, 2008, 99 (06) :1664-1671
[4]  
Besbes I., CARBOHYDRAT IN PRESS
[5]   Processing of cellulose nanofiber-reinforced composites [J].
Bhatnagar, A ;
Sain, M .
JOURNAL OF REINFORCED PLASTICS AND COMPOSITES, 2005, 24 (12) :1259-1268
[6]   The future prospects of microbial cellulose in biomedical applications [J].
Czaja, Wojciech K. ;
Young, David J. ;
Kawecki, Marek ;
Brown, R. Malcolm, Jr. .
BIOMACROMOLECULES, 2007, 8 (01) :1-12
[7]   Viscoelastic behavior and electrical properties of flexible nanofiber filled polymer nanocomposites.: Influence of processing conditions [J].
Dalmas, Florent ;
Cavaille, Jean-Yves ;
Gauthier, Catherine ;
Chazeau, Laurent ;
Dendievel, Remy .
COMPOSITES SCIENCE AND TECHNOLOGY, 2007, 67 (05) :829-839
[8]  
DEGENNES PG, 1976, J PHYS LETT-PARIS, V37, pL1, DOI 10.1051/jphyslet:019760037010100
[9]   FT Raman microscopy of untreated natural plant fibres [J].
Edwards, HGM ;
Farwell, DW ;
Webster, D .
SPECTROCHIMICA ACTA PART A-MOLECULAR AND BIOMOLECULAR SPECTROSCOPY, 1997, 53 (13) :2383-2392
[10]  
FENGEL D, 1971, J POLYM SCI C, V36, P383