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Durable Anti-bacterial Nylon Carpet Using Colloidal Nano Silver

Treść / Zawartość
Identyfikatory
Warianty tytułu
PL
Nylonowe dywany z trwałą antybakteryjną preparacją zawierającą koloidalne nanosrebro
Języki publikacji
EN
Abstrakty
EN
Silver nanoparticles (Ag-NPs) are increasingly being incorporated in a variety of products, textiles, and in healthcare, mainly due to their antibacterial properties. The present study investigated the antimicrobial efficiency and colour changes of floor covering loaded with colloidal silver nanoparticles via a simple and cost-effective method. The influences of colloidal concentration on antimicrobial activity against Escherichia coli and Staphylococcus aureus as well as laundering durability were studied. The results of the silver-treated floor covering (nylon 6 piles) with 50 - 100 ppm dilution exhibited outstanding antimicrobial efficiency and indicated a 99.42% reduction in Staphylococcus aureus and a 79.25% reduction in Escherichia coli. Furthermore, the bioactivity of Ag-NPs was maintained even after ten washings. The removal of silver nanoparticles in wastewater was investigated by UV-visible spectroscopy. Scanning electron microscopy (SEM) and EDX were employed to confirm the presence of nano silver on the surface. The results indicated that Gram positive bacteria are more tolerant to silver than Gram negative bacteria. An appropriate antimicrobial agent deposited on floor covering can prevent unpleasant odours and growth of pathogenic microorganisms.
PL
Nano cząstki srebra (Ag-NPs) są coraz częściej stosowane dla uzyskania antybakteryjnych właściwości wyrobów włókienniczych. Badano dwoma metodami antybakteryjną skuteczność przeciwko szczepom Escherichia coli i Staphylococcus aureus, odporność na pranie zaimpregnowanych tkanin oraz zmianę koloru pokryć podłogowych pokrywanych preparacją z koloidalnego srebra. Uzyskano świetne wyniki pokrywając tkaniny nylonowe z pokrywą preparacją zawierającą 50-100 ppm składnika czynnego i uzyskując redukcję 99.42% przeciwko Staphylococcus aureus oraz 79.25% przeciwko Escherichia coli. Stwierdzono również zachowanie właściwości antybakteryjnych po dziesięciu praniach. Badano możliwość usuwania cząstek srebra ze ścieków za pomocą spektroskopii UV. Obecność cząstek nanosrebra na powierzchni tkanin potwierdzono stosując SEM i EDX. Zastosowanie badanej preparacji zapobiega powstawaniu przykrego zapachu związanego ze wzrostem patogenicznych mikroorganizmów.
Rocznik
Strony
96--101
Opis fizyczny
Bibliogr. 30 poz.
Twórcy
autor
autor
  • Iran, Isfahan, Isfahan University of Technology, Department of Textile
Bibliografia
  • 1. Ravindra S, Murali Mohan1 Y, Narayana Reddy N, MohanaRaju K. Fabrication of antibacterial cotton fibres loaded with silver nanoparticles via Green Approach.Colloids and Surfaces A: Physicochem. Eng. Aspects 2010; 367: 31–40.
  • 2. Kitahara N, Sato T, Isogawa H, Ohgoe Y, Masuko S, Shizuku F, Hirakuri KK. Antibacterial property of DLC film coated on textile material. Diamond & Related Materials 2010; 19: 690–694..
  • 3. Flores CY, Diaz C, Rubert A, Benítez GA, Moreno MS, Fernández Lorenzo de Mele MA, Salvarezza RC, Schilardi PL, Vericat C. Spontaneous adsorption of silver nanoparticles on Ti/TiO2 surfaces, antibacterial effect on Pseudomonas aeruginosa. Journal of Colloid and Interface Science 2010; 350: 402–408.
  • 4. Thomas V, Yallapu MM, Sreedhar B, Bajpai SK. Breathing-In/Breathing-Out Approach to Preparing Nano silver-Loaded Hydrogels: Highly Efficient Antibacterial Nano composites. Journal of Applied Polymer Science 2009; 111: 934–944.
  • 5. GaffarHossain KM, Gonzalez MD, Lozano GR, Tzanov T. Multifunctional modification of wool using an enzymatic process in aqueous–organic media. Journal of Biotechnology 2009; 141: 58–63.
  • 6. Nochos AN, Iconomopoulou SM, Voyiatzis GA. Antimicrobial crosslinked polystyrene nanospheres for specialty multifunctional multifunctional textile production. Journal of Controlled Release 2008; 132, 3: 75-76.
  • 7. Shaoa H, Jianga L, Menga WD, Qing FL. Synthesis and antimicrobial activity of a perfluoroalkyl-containing quaternary ammonium salt. Journal of Fluorine Chemistry 2003; 124: 89–91.
  • 8. Kiwi J, Pulgarin C. Innovative selfcleaning and bactericide textiles. Catalysis Today 2010; 151: 2–7.
  • 9. Kulthong K, Srisung S, Boonpavanitchakul K, Kangwansupamonkon W, Maniratanachote R. Determination of silver nanoparticle release from antibacterial fabrics into artificial sweat. Part Fibre Toxicol 2010; 1, 7: 8.
  • 10. Dror-Ehre A, Mamane H, Belenkova T, Markovich G, Adin A, Silver nanoparticle–E. coli colloidal interaction in water and effect on E. coli survival. Journal of Colloid and Interface Science 2009; 339:521–526.
  • 11. Rai M, Yadav A, Gade A. Silver nanoparticles as a new generation of antimicrobials. Biotechnology Advances 2009; 27(1): 76–83.
  • 12. Barrasa JG, Luzuriaga JML, Monge M. Silver nanoparticles: synthesis through chemical methods in solution and biomedical applications. Cent. Eur. J. Chem. 2010.
  • 13. Sichani GN, Morshed M, Amirnasr M, Abedi D. In Situ Preparation, Electrospinning, and Characterization of Polyacrylonitrile Nanofibers Containing Silver Nanoparticles. Journal of Applied Polymer Science 2010; 116: 1021–1029.
  • 14. Ahmed EM, Aggor FS. Swelling Kinetic Study and Characterization of Crosslinked Hydrogels Containing Silver Nanoparticles. Journal of Applied Polymer Science 2010; 117: 2168–2174.
  • 15. Kotlyar A, Perkas N, Amiryan G, Meyer M, Zimmermann W, Gedanken A. Coating Silver Nanoparticles on Poly(methyl methacrylate) Chips and Spheres via Ultrasound Irradiation. Journal of Applied Polymer Science 2007; 104: 2868–2876.
  • 16. Ki HY, Kim JH, Kwon SC, Jeong SH. A study on multifunctional wool textiles treated with nano-sized Silver. J Mater Sci 2007; 42: 8020–8024.
  • 17. Matyias E, Bacciarelli A, Rybicki E, Szynkowska MI, Kolodziejczyk M. Antibacterial properties of silver finished textile. Fibres & Textiles in Eastern Europe 2008; 16, 5(70): 101–107.
  • 18. Kitahara N, Sato T, Isogawa H, Ohgoe Y, Masuko S, Shizuku F, Hirakuri KK. Antibacterial property of DLC film coated on textile material. Diamond & Related Materials 2010; 19: 690–694.
  • 19. Dastjerdi R, Montazer M. A review on the application of inorganic nano-structured materials in the modification of textiles: Focus on anti-microbial properties. Colloids and Surfaces B: Biointerfaces 2010; 79: 5–18.
  • 20. Filipowska B, Rybicki E, Walawska A, Matyjas-Zgondek E. New Method for the Antibacterial and Antifungal Modification of Silver Finished Textiles. Fibres & Textiles in Eastern Europe 2011; 19, 4(87): 124–128.
  • 21. Dastjerdi R, Montazer M. A new method to stabilize nanoparticles on textile surfaces. Colloids and Surfaces A: Physicochem. Eng. Aspects 2009; 345: 202–210.
  • 22. Qingwen S, Yi L, Jianwei X, Hu JY, Yuen M. Thermal stability of composite phase change material microcapsules incorporated with silver nano-particles. Polymer 2007; 48: 3317-3323.
  • 23. Lee HJ, Jeong SH. Bacteriostasis and Skin Innoxiousness of Nanosize Silver Colloids on Textile Fabrics. Textile Res.J. 2005; 75(7): 551–556.
  • 24. Zhang F, Wu X, Chen Y. Lin H. Application of silver nanoparticles to cotton fabric as an antibacterial textile finish. Fibers and Polymers 2009; 10; 4: 496-501.
  • 25. Ilic V, Šaponjic Z, Vodnik V, Potkonjak B, Jovancˇic P, Nedeljkovic J, Radetic M. The influence of silver content on antimicrobial activity and color of cotton fabrics functionalized with Ag nanoparticles.Carbohydrate Polymers 2009; 78:564–569.
  • 26. Jantas R, Gorna K. Antibacterial finishing of cotton fabrics. Fibers & Textiles in Eastern Europe 2006; 14, 1(55): 55.
  • 27. Park SW, Bae H, Xing Z, Kwon OH, Huh MW, Kang IK. Preparation and properties of silver-containing nylon 6 nanofibers formed by electrospinning. Journal ofAppliedPolymer Science 2009; 112: 2320–2326.
  • 28. Gouda M. Enhancing flame-resistance and antibacterial properties of cotton fabric.Journal of Industrial Textiles 2006;36(2): 167-177.
  • 29. Maneerung T, Tokura S, Rujiravanit R. Impregnation of silver nanoparticles into bacterial cellulose for antimicrobial wound dressing. Carbohydrate Polymers 2008; 72: 43–51.
  • 30. Egger S, Lehmann, RP, Height MJ, Loessner MJ, Schuppler M. Antimicrobial Properties of a Novel Silver-Silica Nanocomposite Material. Applied and environmental microbiology 2009: 2973–2976.
Typ dokumentu
Bibliografia
Identyfikator YADDA
bwmeta1.element.baztech-article-BPW7-0023-0064
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