CHITOSAN ADDED COMPOSITE VISCOSE YARN AND ITS POTENTIAL APPLICATION FOR DENIM FABRIC DEVELOPMENT

dc.contributor.authorKORKMAZ, AHMET
dc.contributor.authorBABAARSLAN, OSMAN
dc.contributor.organizationTechnická univerzita v Liberci
dc.date.accessioned2023-04-19T09:20:51Z
dc.date.available2023-04-19T09:20:51Z
dc.description.abstractThe rapid increase in consumption has led to the decrease and even extinction of natural resources on earth. The textile industry also has an important place in terms of consumption. The transition to more sustainable biodegradable products instead of established fossil-based materials has increased rapidly due to textile manufacturers and related industries, legal regulations, social responsibility commitments and increasing ecological awareness of customers. Developing new environmentally friendly, biodegradable material groups with new technologies or by modifying existing technologies has been the main goal of many researchers. In this context, we aimed to develop denim fabric that is effective against strong hospital bacteria by using the yarn containing biopolymer chitosan as a weft in denim production. Chitosan finds wide application in the textile industry due to its biodegradability, antibacterial activity and many more functionalities. Chitosan is used in biomedical textile applications in the textile industry, either as a wound healing, hemostatic (blood stopper), antibacterial, antifungal, either alone or modified to various derivatives or combined with other materials. In this context, instead of using chitosan as a coating material in our studies, chitosan-containing yarn was used in the production of denim fabric in order to distribute the chitosan more homogeneously and to increase the washing resistance. As a result, it was determined that the denim fabric developed by using chitosan-based yarn in weft in denim production reduces hospital bacteria (MRSA-Methicillin resistant staphylococcus aureus) by > 99%.cs
dc.formattext
dc.format.extent6 stran
dc.identifier.doi10.15240/tul/008/2023-1-017
dc.identifier.issn1335-0617
dc.identifier.urihttps://dspace.tul.cz/handle/15240/167246
dc.language.isocscs
dc.publisherTechnical University of Liberec
dc.publisher.abbreviationTUL
dc.relation.isbasedonBethlehem, A., Studies on dyeing properties of chitosan modified cellulosic fiber, Journal of Textile Engineering & Fashion Technology. 2020;6(1):37‒42. http://dx.doi.org/10.15406/jteft.2020.06.00224
dc.relation.isbasedonCroisier, F., 2013, Chitosan-based biomaterials for tissue engineering European Polymer Journal 49 (2013) 780–792 http://dx.doi.org/10.1016/j.eurpolymj.2012.12.009
dc.relation.isbasedonChen, J., 2015. Synthetic textile fibers: regenerated cellulose fibers. In: Sinclair, R. (Ed.), Textiles and Fashion. Woodhead Publishing in Association with the Textile Institute. http://dx.doi.org/10.1016/B978-1-84569-931-4.00004-0
dc.relation.isbasedonErdoğan, S., Textilefinishing with chitosan and silver nanoparticles against Escherichia coli ATCC 8739, Trakya University Journal of Natural Sciences, 21(1): 21-32, 2020 ISSN 2147-0294, e-ISSN 2528-9691 https://doi.org/10.23902/trkjnat.641367
dc.relation.isbasedonKuzgun N., Chitosan Production, Chitosan Properties and Usage Areas., Türk Bilimsel Derlemeler Dergisi 6 (2): 16- 21, 2013
dc.relation.isbasedonIvanova, N.A., Superhydrophobic chitosan-based coatings for textile processing, Applied Surface Science 263 (2012) 783–787 https://doi.org/10.1016/j.apsusc.2012.09.173
dc.relation.isbasedonIbrahim, H. M., 2015, Concepts, Compounds and the Alternatives of Antibacterials, Chitosan as a Biomaterial — Structure, Properties, and Electrospun Nanofibers. 10.5772/59522(Chapter 4) https://dx.doi.org/10.5772/61300
dc.relation.isbasedonLee Y-M, Park Y-J, Lee S-J, Ku Y, Han S-B, Choi S-M, et al. Tissue engineered bone formation using chitosan/tricalcium phosphate sponges. J Periodontol 2000;71:410–7. https://doi.org/10.1902/jop.2000.71.3.410
dc.relation.isbasedonCosta-Pinto AR, Reis RL, Neves NM. Scaffolds based bone tissue engineering: the role of chitosan. Tissue Eng Part B, 2011;17:331–47. https://doi.org/10.1089/ten.teb.2010.0704
dc.relation.isbasedonRaeisi, M., Superhydrophobic cotton fabrics coated by chitosan and titanium dioxide nanoparticles with enhanced antibacterial and UV-protecting properties International Journal of Biological Macromolecules 171 (2021) 158–165 https://doi.org/10.1016/j.ijbiomac.2020.12.220
dc.relation.isbasedonStegmaier, T., Chitosan – A Sizing Agent in Fabric Production – Development and Ecological Evaluation, Clean 2008, 36 (3), 279 – 286 http://dx.doi.org/10.1002/clen.200700013
dc.relation.isbasedonŞahan, G., 2014, Kitosan biyopolimerinin formları ve tekstil uygulamaları, XIII. Uluslararası İzmir Tekstil ve Hazır Giyim Sempozyumu,170
dc.relation.isbasedonSunder, Edwin A., 2014, Croslinking of Chitosan with Cotton using Polycarboxylic Acids, International Journal of Engineering Research & Technology (IJERT), ISSN: 2278- 0181, Vol 3 Issue 4,
dc.relation.isbasedonVithanage, A.H., 2015, Textile Dye Removal in Wastewater Using Chitosan, Annual Sessions of IESL, pp. [1 - 10], doi:10.4028/www. scientific.net /AMR.610- 613.3394
dc.relation.ispartofFibres and Textiles
dc.subjectChitosancs
dc.subjectAntibacterialcs
dc.subjectDenim fabriccs
dc.subjectBiodegradabilitycs
dc.subjectMRSAcs
dc.subjectMedical textilescs
dc.titleCHITOSAN ADDED COMPOSITE VISCOSE YARN AND ITS POTENTIAL APPLICATION FOR DENIM FABRIC DEVELOPMENTen
dc.typeArticleen
local.accessopen access
local.citation.epage98
local.citation.spage93
local.facultyFaculty of Textile Engineeringen
local.fulltextyesen
local.relation.issue1
local.relation.volume30
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