Chitosan Based Regenerated Cellulose Fibers Functionalized with Plasma and Ultrasound

被引:16
作者
Brodnjak, Urska Vrabic [1 ]
Jesih, Adolf [2 ]
Gregor-Svetec, Diana [1 ]
机构
[1] Univ Ljubljana, Fac Nat Sci & Engn, Dept Text Graph Arts & Design, Snezniska 5, SI-1000 Ljubljana, Slovenia
[2] Joef Stefan Inst, Jamova Cesta 39, SI-1000 Ljubljana, Slovenia
来源
COATINGS | 2018年 / 8卷 / 04期
关键词
chitosan; regenerated cellulose fibers; surface modification; plasma; ultrasonic treatment; COATED COTTON FIBER; REACTIVE DYES; ADSORPTION; FABRICS; VISCOSE; SYSTEM; SIZE;
D O I
10.3390/coatings8040133
中图分类号
T [工业技术];
学科分类号
08 ;
摘要
The great potential of regenerated cellulose fibers, which offer excellent possibilities as a matrix for the design of bioactive materials, was the lead for our research. We focused on the surface modification of fibers to improve the sorption properties of regenerated cellulose and biocomposite regenerated cellulose/chitosan fibers, which are on the market. The purpose of our investigation was also the modification of regenerated cellulose fibers with the functionalization by chitosan as a means of obtaining similar properties to biocomposite regenerated cellulose/chitosan fibers on the market. Argon gas plasma was used for fiber surface activation and chitosan adsorption. Ultrasound was also used as a treatment procedure for the surface activation of regenerated cellulose fibers and treatment with chitosan. Analyses have shown that ultrasonic energy or plasma change the accessibility of free functional groups, structure and reactivity, especially in regenerated cellulose fibers. Changes that occurred in the morphology and in the structure of fibers were also reflected in their physical and chemical properties. Consequently, moisture content, sorption properties and water retention improved.
引用
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页数:12
相关论文
共 32 条
  • [21] Chitosan as a bioactive polymer: Processing, properties and applications
    Muxika, A.
    Etxabide, A.
    Uranga, J.
    Guerrero, P.
    de la Caba, K.
    [J]. INTERNATIONAL JOURNAL OF BIOLOGICAL MACROMOLECULES, 2017, 105 : 1358 - 1368
  • [22] Pedersen G.L., 1992, Can. Textile J, V109, P31
  • [23] Design parameter investigation of industrial size ultrasound textile treatment bath
    Perincek, Seher
    Uzgur, A. Erman
    Duran, Kerim
    Dogan, Aydin
    Korlu, Aysegul E.
    Bahtiyari, Ibrahim M.
    [J]. ULTRASONICS SONOCHEMISTRY, 2009, 16 (01) : 184 - 189
  • [24] Chitin and chitosan polymers: Chemistry, solubility and fiber formation
    Pillai, C. K. S.
    Paul, Willi
    Sharma, Chandra P.
    [J]. PROGRESS IN POLYMER SCIENCE, 2009, 34 (07) : 641 - 678
  • [25] Effect of microwave argon plasma on the glycosidic and hydrogen bonding system of cotton cellulose
    Prabhu, S.
    Vaideki, K.
    Anitha, S.
    [J]. CARBOHYDRATE POLYMERS, 2017, 156 : 34 - 44
  • [26] Chitin and chitosan: Properties and applications
    Rinaudo, Marguerite
    [J]. PROGRESS IN POLYMER SCIENCE, 2006, 31 (07) : 603 - 632
  • [27] Effect of Atmospheric Pressure Plasma Treatment/Followed by Chitosan Grafting on Antifelting and Dyeability of Wool Fabric
    Shahidi, Sheila
    Ghoranneviss, Mahmood
    Sharifi, Sanaz Dalal
    [J]. JOURNAL OF FUSION ENERGY, 2014, 33 (02) : 177 - 183
  • [28] Immobilization of copper ions on chitosan/cellulose acetate blend hollow fiber membrane for protein adsorption
    Shen, S. S.
    Yang, J. J.
    Liu, C. X.
    Bai, R. B.
    [J]. RSC ADVANCES, 2017, 7 (17): : 10424 - 10431
  • [29] Dyeing chitin/cellulose composite fibers with reactive dyes
    Shimizu, Y
    Dohmyou, M
    Yoshikawa, M
    Takagishi, T
    [J]. TEXTILE RESEARCH JOURNAL, 2004, 74 (01) : 34 - 38
  • [30] Ultrasound energy to accelerate dye uptake and dye-fiber interaction of reactive dye on knitted cotton fabric at low temperatures
    Tissera, Nadeeka D.
    Wijesena, Ruchira N.
    de Silva, K. M. Nalin
    [J]. ULTRASONICS SONOCHEMISTRY, 2016, 29 : 270 - 278