Recent Advances in Development of Antimicrobial Textiles
165
92. Ji JH, Jung JH, Kim SS, Yoon J-U, Park JD, Choi BS, Chung YH, Kwon IH, Jeong J, Han
BS, Shin JH, Sung JH, Song KS, Yu IJ (2007) Twenty-eight-day inhalation toxicity study of
silver nanoparticles in Sprague-Dawley rats. Inhal Toxicol 19(10):857–871
93. Rai MK, Deshmukh SD, Ingle AP, Gade AK (2012) Silver nanoparticles: the powerful
nanoweapon against multidrug-resistant bacteria. J Appl Microbiol 112(5):841–852
94. Shateri Khalil-Abad M, Yazdanshenas ME, Nateghi MR (2009) Effect of cationization on
adsorption of silver nanoparticles on cotton surfaces and its antibacterial activity. Cellulose
16(6):1147–1157
95. Yeo SY, Jeong SH (2003) Preparation and characterization of polypropylene/silver nanocomposite fibers. Polym Int 52(7):1053–1057
96. Dubas ST, Kumlangdudsana P, Potiyaraj P (2006) Layer-by-layer deposition of antimicrobial
silver nanoparticles on textile fibers. Colloids Surf A Physicochem Eng Asp 289(1–3):105–
109
97. Kelly FM, Johnston JH (2011) Colored and functional silver nanoparticle-wool fiber
composites. ACS Appl Mater Interfaces 3(4):1083–1092
98. Ali SW, Rajendran S, Joshi M (2011) Synthesis and characterization of chitosan and silver
loaded chitosan nanoparticles for bioactive polyester. Carbohydr Polym 83(2):438–446
99. Perelshtein I, Applerot G, Perkas N, Grinblat J, Gedanken A (2012) A one-step process
for the antimicrobial finishing of textiles with crystalline TiO 2 nanoparticles. Chem Eur J
18(15):4575–4582
100. Montazer M, Seifollahzadeh S (2011) Enhanced self-cleaning, antibacterial and UV protection
properties of nano TiO 2 treated textile through enzymatic pretreatment. Photochem Photobiol
87(4):877–883
101. Sivakumar PM, Balaji S, Prabhawathi V, Neelakandan R, Manoharan PT, Doble M (2010)
Effective antibacterial adhesive coating on cotton fabric using ZnO nanorods and chalcone.
Carbohydr Polym 79(3):717–723
102. Appierot G, Lipovsky A, Dror R, Perkas N, Nitzan Y, Lubart R, Gedanken A (2009) Enhanced
antibacterial activity of nanocrystalline ZnO due to increased ROS-mediated cell injury. Adv
Funct Mater 19(6):842–852
103. Braydich-Stolle L (2005) In vitro cytotoxicity of nanoparticles in mammalian germline stem
cells. Toxicol Sci 88(2):412–419
104. El-Nahhal IM, Zourab SM, Kodeh FS, Semane M, Genois I, Babonneau F (2012) Nanostructured copper oxide-cotton fibers: synthesis, characterization and applications. Int Nano
Lett 2(1):14
105. Castro C, Sanjines R, Pulgarin C, Osorio P, Giraldo SA, Kiwi J (2010) Structure–reactivity
relations for DC-magnetron sputtered Cu-layers during E. coli inactivation in the dark and
under light. J Photochem Photobiol A Chem 216(2–3):295–302
106. Mary G, Bajpai SK, Chand N (2009) Copper (II) ions and copper nanoparticles-loaded chemically modified cotton cellulose fibers with fair antibacterial properties. J Appl Polym Sci
113(2):757–766
107. Sambale F, Wagner S, Stahl F, Khaydarov RR, Scheper T, Bahnemann D (2015) Investigations
of the toxic effect of silver nanoparticles on mammalian cell lines. J Nanomater 2015:1–9
108. Shalumon KT, Anulekha KH, Nair SV, Nair SV, Chennazhi KP, Jayakumar R (2011)
Sodium alginate/poly(vinyl alcohol)/nano ZnO composite nanofibers for antibacterial wound
dressings. Int J Biol Macromol 49(3):247–254
109. Dastjerdi R, Mojtahedi MRM, Shoshtari AM, Khosroshahi A (2010) Investigating the production and properties of Ag/TiO 2 /PP antibacterial nanocomposite filament yarns. J Text Inst
101(3):204–213
110. Daoud WA, Xin JH, Zhang Y-H (2005) Surface functionalization of cellulose fibers with
titanium dioxide nanoparticles and their combined bactericidal activities. Surf Sci 599(1–
3):69–75
111. Kiwi J, Rtimi S, Pulgarin C (2013) Cu, Cu/TiO 2 thin films sputtered by up to date methods on
non-thermal thin resistant substrates leading to bacterial inactivation. Microb Pathog Strateg
Combat Them Sci Technol Educ 74–82
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