Montazer m amiri m m malek r m a 2013 in situ

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Montazer, M., Amiri, M. M. & Malek, R. M. A. (2013). In situ synthesis and characterization of nano ZnO on wool: in fl uence of nano photo reactor on wool properties. Photochemistry and photobiology, 89 (5), 1057 1063. Montazer, M., & Maali Amiri, M. (2014). ZnO nano reactor on textiles and polymers: Ex situ and in situ synthesis, application, and characterization. The Journal of Physical Chemistry B, 118 (6), 1453 1470. Montazer, M., & Pakdel, E. (2011). Functionality of nano titanium dioxide on textiles with future aspects: Focus on wool. Journal of Photochemistry and Photobiology C: Photochemistry Reviews, 12 (4), 293 303. Montazer, M., Pakdel, E., & Behzadnia, A. (2011). Novel feature of nano-titanium dioxide on textiles: Antifelting and antibacterial wool. Journal of Applied Polymer Science, 121 (6), 3407 3413. Moore, K., & Gray, D. (2007). Using PHMB antimicrobial to prevent wound infection. Wounds uK, 3 (2), 96 102. Mulder, G. D., Cavorsi, J. P., & Lee, D. K. (2007). Polyhexamethylene niguanide (PHMB): An addendum to current topical antimicrobials. Wounds : A Compendium of Clinical Research and Practice , 19 (7), 173 182. Neisius, M., Stelzig, T., Liang, S., & Gaan, S. (2015). Flame retardant fi nishes for textiles . Functional Finishes for Textiles: Woodhead Publishing Limited. doi: 10.1533/9780857098450. 2.429 Orhan, M., Kut, D., & Gunesoglu, C. (2007). Use of triclosan as antibacterial agent in textiles. Indian Journal of Fibre & Textile Research, 32 , 114 118. Perelshtein, I., Applerot, G., Perkas, N., Wehrschetz-Sigl, E., Hasmann, A., Guebitz, G. M., et al. (2009). Antibacterial properties of an in situ generated and simultaneously deposited nanocrystalline ZnO on fabrics. ACS Applied Materials and Interfaces, 1 (2), 361 366 Perera, S., Bhushan, B., Bandara, R., & Rajapakse, G. (2013). Colloids and surfaces A: Physicochemical and engineering aspects morphological, antimicrobial, durability, and physical properties of untreated and treated textiles using silver-nanoparticles. Colloids and Surfaces A: Physicochemical and Engineering Aspects, 436 , 975 989. Petkova, P., Francesko, A., Fernandes, M. M., Mendoza, E., Perelshtein, I., Gedanken, A., et al. (2014). Sonochemical coating of textiles with hybrid ZnO/chitosan antimicrobial nanoparticles. Radeti ć , M. (2013). Functionalization of textile materials with TiO 2 nanoparticles. Journal of Photochemistry and Photobiology C: Photochemistry Reviews, 16 , 62 76. Rai, M., Yadav, A., & Gade, A. (2009). Silver nanoparticles as a new generation of antimicrobials. Biotechnology Advances, 27 (1), 76 83. 114 Shahid-ul-Islam et al.
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Rather, L. J., Islam, S. & Mohammad, F. (2015). Study on the application of Acacia nilotica natural dye to wool using fl uorescence and FT-IR spectroscopy. Fibers and Polymers, 16 (7), 1497 1505. Saravanan, D. (2007). UV protection textile materials. Autex Research Journal, 7 (1), 53 62. Sawai, J. (2003). Quantitative evaluation of antibacterial activities of metallic oxide powders (ZnO, MgO and CaO) by conductimetric assay. Journal of Microbiological Methods, 54 (2), 177 182.
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