Preparation and properties of compatibilized cellulose nanocrystal/ poly(lactic acid) composites

被引:0
作者
Yuan C. [1 ]
Luo W. [1 ]
Yuan G. [1 ]
Wu Z. [1 ]
Zhou G. [1 ]
Yang S. [1 ]
机构
[1] College of Material Science and Engineering, Central South University of Forestry and Technology, Changsha
来源
Fuhe Cailiao Xuebao/Acta Materiae Compositae Sinica | 2016年 / 33卷 / 12期
关键词
Cellulose nanocrystal; Compatibilization; Composite; Poly(lactic acid); Properties;
D O I
10.13801/j.cnki.fhclxb.20160219.005
中图分类号
学科分类号
摘要
Poly (lactic acid) (PLA) graft copolymer (mPLA) was prepared by graft copolymerization using maleic anhydride and butyl acrylate as comonomers. Then the mPLA was used as compatibilizer to prepare cellulose nanocrystal (NCC)/PLA composites by solution casting method. Effects of mPLA on the structure and properties of NCC/PLA composites were investigated by SEM, DSC, TG, wide angle X-ray diffraction(WXRD), mechanical testing and degradation property test. Results show that the application of mPLA in NCC/PLA composites improves compatibilization between NCC and PLA, and promotes dispersion of NCC in the PLA matrix. More finely dispersed NCC enhances the crystallization nucleation of PLA, resulting in lower crystallization temperature and higher crystallinity. Mechanical properties of NCC/mPLA/PLA composite increase then decrease with increasing mPLA content, when the content of mPLA is 8%, the tensile strength and elastic modulus increase about 30.2% and 41.4% respectively in comparison with those of composite without mPLA. The hydrophilic NCC accelerates degradation of NCC/PLA composite, when mPLA is added, the degradation rate of NCC/PLA composite slowes down but is still higher than that of pure PLA. © 2016, BUAA Culture Media Group Ltd. All right reserved.
引用
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页码:2718 / 2724
页数:6
相关论文
共 23 条
[1]  
Drumright R.E., Gruber P.R., Polylactic acid technology, Advanced Materials, 12, 23, pp. 1841-1846, (2000)
[2]  
Rasal R.M., Janorkar A.V., Hirt D.E., Poly (lactic acid) modifications, Progress in Polymer Science, 35, 3, pp. 338-356, (2010)
[3]  
Beck-Candanedo S., Roman M., Gray D.G., Effect of reaction conditions on the properties and behavior of wood cellulose nanocrystal suspensions, Biomacromolecules, 6, 2, pp. 1048-1054, (2005)
[4]  
Ahola S., Salmi J., Johansson L.S., Et al., Model films from native cellulose nanofibrils. Preparation, swelling, and surface interactions, Biomacromolecules, 9, 4, pp. 1273-1282, (2008)
[5]  
Xu S.H., Gu J., Luo Y.F., Et al., Influence of nanocrystalline cellulose on SiO<sub>2</sub>/natural rubber composites, Acta Materiae Compositae Sinica, 28, 6, pp. 39-44, (2011)
[6]  
Deepa B., Abraham E., Cherian B.M., Et al., Structure, morphology and thermal characteristics of banana nano fibers obtained by steam explosion, Bioresource Technology, 102, 2, pp. 1988-1997, (2011)
[7]  
Ago M., Okajima K., Jakes J.E., Et al., Lignin-based electrospun nanofibers reinforced with cellulose nanocrystals, Biomacromolecules, 13, 3, pp. 918-926, (2012)
[8]  
Siqueira G., Bras J., Dufresne A., Cellulosic bionanocomposites: A review of preparation, properties and applications, Polymers, 2, 4, pp. 728-765, (2010)
[9]  
Mukhe R.T., Kao N., PLA based biopolymer reinforced with natural fiber: A review, Journal of Polymers and the Environment, 19, 3, pp. 714-725, (2011)
[10]  
Gardebjer S., Bergstrand A., Larsson A., A mechanistic approach to explain the relation between increased dispersion of surface modified cellulose nanocrystals and final porosity in biodegradable films, European Polymer Journal, 57, pp. 160-168, (2014)