Influence of chitosan addition on the mechanical and antibacterial properties of carrot cellulose nanofibre film

被引:46
作者
Szymanska-Chargot, Monika [1 ]
Chylinska, Monika [1 ]
Pertile, Giorgia [1 ]
Pieczywek, Piotr M. [1 ]
Cieslak, Krystian J. [2 ]
Zdunek, Artur [1 ]
Frac, Magdalena [1 ]
机构
[1] Polish Acad Sci, Inst Agrophys, Doswiadczalna 4, PL-20290 Lublin 27, Poland
[2] Lublin Univ Technol, Fac Environm Engn, Inst Renewable Energy Engn, Nadbystrzycka 40B, Lublin, Poland
关键词
Nanocellulose; Chitosan; Antibacterial properties; Mechanical properties; Thermal properties; ANTIMICROBIAL PROPERTIES; NANOCRYSTALLINE CELLULOSE; NANOCOMPOSITE FILMS; BARRIER PROPERTIES; WATER-RESISTANT; NANOCELLULOSE; DEGRADATION; APPLE; COMPOSITES; BEHAVIOR;
D O I
10.1007/s10570-019-02755-9
中图分类号
TB3 [工程材料学]; TS [轻工业、手工业、生活服务业];
学科分类号
0805 ; 080502 ; 0822 ;
摘要
Films of carrot cellulose nanofibrils (CCNFs) with the addition of low-viscosity chitosan (CHIT) were prepared by the vacuum filtration. The chitosan content in the films varied from 9 to 33% (dry wt. basis). The surface morphology of the films was investigated by scanning electron microscopy, and it was found that chitosan was dispersed in the CCNF matrix. The interaction between CCNFs and CHIT was evaluated in terms of Fourier transform infrared spectroscopy (FTIR). The obtained results suggested physical interactions rather than hydrogen bonding between CCNFs and CHIT. This finding also supports the results of the water wettability experiment. The addition of chitosan to the nanocellulose matrix causes an increase in the water contact angle, i.e., the surface of the composites becomes more hydrophobic. This increase is probably connected to an interaction between nanocellulose and chitosan forming a denser structure. Analyses of thermal properties showed that the composites are stable under high temperature, and the degradation occurred above 300 degrees C. It was found that the addition of CHIT to CCNF matrices caused a decrease in the Young's modulus-the higher that the concentration of chitosan in the composite was, the lower the Young's modulus (decreased from 14.71 GPa for CCNFs to 8.76 GPa for CCNF/CHIT_5). Additionally, the tensile strength of composites, i.e., the maximum force that causes a fracture decreased after the addition of chitosan (decreased from 145.83 MPa for CCNFs to 129.43 MPa for CCNF/CHIT_5). The results indicated the highest inhibitory effect of the investigated composites against E. coli and S. epidermidis. Whereas M. luteus was inhibited only by the higher concentration of chitosan in the tested composites, inhibition was not found against C. krissii and all tested filamentous fungi. [GRAPHICS] .
引用
收藏
页码:9613 / 9629
页数:17
相关论文
共 64 条
[1]   Chitosan nanoparticles/cellulose nanocrystals nanocomposites as a carrier system for the controlled release of repaglinide [J].
Abo-Elseoud, Wafaa S. ;
Hassan, Mohammad L. ;
Sabaa, Magdy W. ;
Basha, Mona ;
Hassan, Enas A. ;
Fadel, Shaimaa M. .
INTERNATIONAL JOURNAL OF BIOLOGICAL MACROMOLECULES, 2018, 111 :604-613
[2]   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
[3]   Effect of tempo and periodate-chlorite oxidized nanofibrils on ground calcium carbonate flocculation and retention in sheet forming and on the physical properties of sheets [J].
Ammala, Ari ;
Liimatainen, Henrikki ;
Burmeister, Christine ;
Niinimaki, Jouko .
CELLULOSE, 2013, 20 (05) :2451-2460
[4]   Nanocellulose in bio-based food packaging applications [J].
Azeredo, Henriette M. C. ;
Rosa, Morsyleide F. ;
Mattoso, Luiz Henrique C. .
INDUSTRIAL CROPS AND PRODUCTS, 2017, 97 :664-671
[5]   Potential of the biopolymer chitosan with different molecular weights to control postharvest gray mold of tomato fruit [J].
Badawy, Mohamed E. I. ;
Rabea, Entsar I. .
POSTHARVEST BIOLOGY AND TECHNOLOGY, 2009, 51 (01) :110-117
[6]   Antibacterial activity of chitin, chitosan and its oligomers prepared from shrimp shell waste [J].
Benhabiles, S. ;
Salah, R. ;
Lounici, H. ;
Drouiche, N. ;
Goosen, M. F. A. ;
Mameri, N. .
FOOD HYDROCOLLOIDS, 2012, 29 (01) :48-56
[7]   Production of nanocrystalline cellulose from lignocellulosic biomass: Technology and applications [J].
Brinchi, L. ;
Cotana, F. ;
Fortunati, E. ;
Kenny, J. M. .
CARBOHYDRATE POLYMERS, 2013, 94 (01) :154-169
[8]   Individualization of cellulose nanofibers from wood using high-intensity ultrasonication combined with chemical pretreatments [J].
Chen, Wenshuai ;
Yu, Haipeng ;
Liu, Yixing ;
Chen, Peng ;
Zhang, Mingxin ;
Hai, Yunfei .
CARBOHYDRATE POLYMERS, 2011, 83 (04) :1804-1811
[9]  
Chen Y, 2017, HDB COMPOSITES RENEW, P371
[10]   Properties and biocompatibility of chitosan films modified by blending with PVA and chemically crosslinked [J].
Costa, Ezequiel de Souza, Jr. ;
Pereira, Marivalda M. ;
Mansur, Herman S. .
JOURNAL OF MATERIALS SCIENCE-MATERIALS IN MEDICINE, 2009, 20 (02) :553-561