Sorption of chlorhexidine on cellulose mechanism of

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Sorption of chlorhexidine on cellulose: Mechanism of binding and molecular recognition. Journal of Physical Chemistry B, 111 (30), 8775 8784. Bourbigot, S., Devaux, E., & Flambard, X. (2002). Flammability of polyamide-6/clay hybrid nanocomposite textiles. Polymer Degradation and Stability, 75 (2), 397 402. Bozzi, A., Yuranova, T., & Kiwi, J. (2005). Self-cleaning of wool-polyamide and polyester textiles by TiO 2 -rutile modi fi cation under daylight irradiation at ambient temperature. Journal of Photochemistry and Photobiology A: Chemistry, 172 , 27 34. Carosio, F., Laufer, G., Alongi, J., Camino, G. & Grunlan, J. C. (2011). Layer-by-layer assembly of silica-based fl ame retardant thin fi lm on PET fabric. Polymer Degradation and Stability, 96 (5), 745 750. Dastjerdi, R., & Montazer, M. (2010). A review on the application of inorganic nano-structured materials in the modi fi cation of textiles: Focus on anti-microbial properties. Colloids and Surfaces B: Biointerfaces, 79 (1), 5 18. 112 Shahid-ul-Islam et al.
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Dastjerdi, R., Montazer, M., & Shahsavan, S. (2009). A new method to stabilize nanoparticles on textile surfaces. Colloids and Surfaces A: Physicochemical and Engineering Aspects, 345 (1), 202 210. Dev, V. G., Venugopal, J., Sudha, S., Deepika, G., & Ramakrishna, S. (2009). Dyeing and antimicrobial characteristics of chitosan treated wool fabrics with henna dye. Carbohydrate Polymers, 75 (4), 646 650. Dubas, S. T., Kumlangdudsana, P., & Potiyaraj, P. (2006). Layer-by-layer deposition of antimicrobial silver nanoparticles on textile fi bers. Colloids and Surfaces A: Physicochemical and Engineering Aspects, 289 (1), 105 109. Gao, Y. & Cranston, R. (2008). Recent advances in antimicrobial treatments of textiles. Textile Research Journal, 78 (1), 60 72. Guo, C., Zhou, L., & Lv, J. (2013). Effects of expandable graphite and modi fi ed ammonium polyphosphate on the fl ame-retardant and mechanical properties of wood fl our-polypropylene composites. Polymers and Polymer Composites, 21 (7), 449 456. Hakansson, E., Kaynak, A., Lin, T., Nahavandi, S., Jones, T., & Hu, E. (2004). Characterization of conducting polymer coated synthetic fabrics for heat generation. Synthetic Metals, 144 (1), 21 28. Hutchison, J. E. (2008). Greener nanoscience: A proactive approach to advancing applications and reducing implications of nanotechnology. ACS Nano, 2 (3), 395 402. Iravani, S. (2011). Green synthesis of metal nanoparticles using plants. Green Chemistry, 13 , 2638 2650. Islam, S., Butola, B. S., & Mohammad, F. (2016). Silver nanomaterials as future colorants and potential antimicrobial agents for natural and synthetic textile materials. RSC Advances, 6 , 44232 44247. Islam, S., & Mohammad, F. (2014). Emerging green technologies and environment friendly products for sustainable textiles. In: S. S. Muthu (ed.), Roadmap to sustainable textiles and clothing (pp. 6 82): Singapore: Springer. Islam, S., Shahid, M., & Mohammad, F. (2013a). Green chemistry approaches to develop antimicrobial textiles based on sustainable biopolymers A review. Industrial and Engineering Chemistry Research, 52 , 5245 5260.
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  • N. Gokarneshan

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