The surface modification of cellulose fibres for use as reinforcing elements in composite materials

被引:283
作者
Belgacem, MN [1 ]
Gandini, A [1 ]
机构
[1] Ecole Francaise Papeterie & Ind Graph, EFPG, F-38402 St Martin Dheres, France
关键词
cellulose; surface treatment; chemical grafting; surface characterisation;
D O I
10.1163/1568554053542188
中图分类号
TB33 [复合材料];
学科分类号
摘要
The interest in using cellulose fibres as reinforcing elements in composite materials based on polymeric matrices is constantly growing, mainly because of the many advantages associated with this renewable material. However, the preparation of cellulose-based composites is perturbed by the highly hydrophilic character of the fibres, which is associated with a low interfacial compatibility with hydrophobic polymeric matrices, as well as with a loss of mechanical properties after moisture uptake. In order to reduce the hydrophilic character of cellulose fibres and to improve the strength of their adhesion to the matrix, it is necessary to undertake a structural modification of their surface. Several approaches have been studied, namely (i) physical treatments such as corona, plasma, laser, vacuum ultraviolet and gamma-radiation treatments; (ii) chemical grafting by direct condensation, including surface compatibilisation with hydrophobic moieties and co-polymerisation with the matrix. The copolymerisation approach called upon different strategies: (i) The use of bi-functional molecules capable of reacting with the OH groups of the cellulose surface and leaving the second functions available for further exploitation; (ii) The direct activation of the surface and the subsequent grafting- from polymerisation; and (iii) The condensation of organometallic compounds, followed by their coupling with suitable reactive molecules or macromolecules. The characterisation of the modified surfaces involved a variety of techniques, including elemental analysis, contact angle measurements, inverse gas chromatography, X-ray photoelectron and FTIR spectroscopy, water uptake, etc. The present survey reviews the different approaches proposed in the literature and critically assesses their respective merits and drawbacks.
引用
收藏
页码:41 / 75
页数:35
相关论文
共 147 条
[11]  
Bledzki AK, 1996, J APPL POLYM SCI, V59, P1329, DOI 10.1002/(SICI)1097-4628(19960222)59:8<1329::AID-APP17>3.0.CO
[12]  
2-0
[13]   Composites reinforced with cellulose based fibres [J].
Bledzki, AK ;
Gassan, J .
PROGRESS IN POLYMER SCIENCE, 1999, 24 (02) :221-274
[14]  
Boras L, 1997, NORD PULP PAP RES J, V12, P220
[15]   New bio-composites based on short fibre reinforced hydroxypropylcellulose films [J].
Borges, JP ;
Godinho, MH ;
Belgacem, MN ;
Martins, AF .
COMPOSITE INTERFACES, 2001, 8 (3-4) :233-241
[16]  
BOTARO V, IN PRESS J THERMOPL
[17]   Chemical modification of lignocellulosic materials by irradiation with Nd-YAG pulsed laser [J].
Botaro, VR ;
dos Santos, CG ;
Arantes, G ;
da Costa, AR .
APPLIED SURFACE SCIENCE, 2001, 183 (1-2) :120-125
[18]   Chemical modification of the surface of cellulosic fibres. 2. Introduction of alkenyl moieties via condensation reactions involving isocyanate functions [J].
Botaro, VR ;
Gandini, A .
CELLULOSE, 1998, 5 (02) :65-78
[19]   Formation of polymeric films on cellulosic surfaces by admicellar polymerization [J].
Boufi, S ;
Gandini, A .
CELLULOSE, 2001, 8 (04) :303-312
[20]   Mechanical properties of acrylate-grafted henequen cellulose fibers and their application in composites [J].
Canché-Escamilla, G ;
Cauich-Cupul, JI ;
Mendizábal, E ;
Puig, JE ;
Vázquez-Torres, H ;
Herrera-Franco, PJ .
COMPOSITES PART A-APPLIED SCIENCE AND MANUFACTURING, 1999, 30 (03) :349-359