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Antimicrobial from Silver-Graphene Coated Medical Textiles

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Antimicrobial from Silver-Graphene Coated Medical Textiles ( antimicrobial-from-silver-graphene-coated-medical-textiles )

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Polymers 2019, 11, 2000 21 of 21 135. Cui,J.;Yang,Y.;Zheng,M.;Liu,Y.;Xiao,Y.;Lei,B.;Chen,W.Facilefabricationofgrapheneoxideloaded with silver nanoparticles as antifungal materials. Mater. Res. Express 2014, 1, 045007. [CrossRef] 136. Xing,Y.;Yang,X.;Dai,J.Antimicrobialfinishingofcottontextilebasedonwaterglassbysol–gelmethod. J. Sol Gel Sci. Technol. 2007, 43, 187–192. [CrossRef] 137. Moghayedi,M.;Goharshadi,E.K.;Ghazvini,K.;Ahmadzadeh,H.;Ranjbaran,L.;Masoudi,R.;Ludwig,R. Kinetics and mechanism of antibacterial activity and cytotoxicity of Ag-RGO nanocomposite. Colloids Surf. B Biointerfaces 2017, 1, 366–374. [CrossRef] 138. Szunerits,S.;Boukherroub,R.Antibacterialactivityofgraphene-basedmaterials.J.Mater.Chem.B2016,4, 6892–6912. [CrossRef] 139. Liu,C.;Shen,J.;Yeung,K.W.K.;Tjong,S.C.DevelopmentandAntibacterialPerformanceofNovelPolylactic Acid-Graphene Oxide-Silver Nanoparticle Hybrid Nanocomposite Mats Prepared By Electrospinning. ACS Biomater. Sci. Eng. 2017, 3, 471–486. [CrossRef] 140. Yun,S.H.;Kwok,S.J.J.Lightindiagnosis,therapyandsurgery.Nat.Biomed.Eng.2017,1,0008.[CrossRef] [PubMed] 141. Zhang, Y.; Aslan, K.; Previte, M.J.R.; Geddes, C.D. Plasmonic engineering of singlet oxygen generation. Proc. Natl. Acad. Sci. USA 2008, 105, 1798–1802. [CrossRef] [PubMed] 142. Yin,R.;Agrawal,T.;Khan,U.;Gupta,G.K.;Rai,V.;Huang,Y.;Hamblin,M.R.Antimicrobialphotodynamic inactivation in nanomedicine: Small light strides against bad bugs. Nanomedicine 2015, 10, 2379–2404. [CrossRef] 143. Chandrasekhar,P.S.;Chander,N.;Anjaneyulu,O.;Komarala,V.K.PlasmoniceffectofAg@TiO2core–shell nanocubes on dye-sensitized solar cell performance based on reduced graphene oxide–TiO2 nanotube composite. Thin Solid Films 2015, 594, 45–55. [CrossRef] 144. Zhong, S.; Jiang, W.; Han, M.; Liu, G.; Zhang, N.; Lu, Y. Graphene supported silver@silver chloride & ferroferric oxide hybrid, a magnetically separable photocatalyst with high performance under visible light irradiation. Appl. Surf. Sci. 2015, 347, 242–249. 145. Tang,J.;Chen,Q.;Xu,L.;Zhang,S.;Feng,L.;Cheng,L.;Xu,H.;Liu,Z.;Peng,R.GrapheneOxide–Silver Nanocomposite As a Highly Effective Antibacterial Agent with Species-Specific Mechanisms. ACS Appl. Mater. Interfaces 2013, 5, 3867–3874. [CrossRef] 146. Nazari, F.; Movafeghi, A.; Jafarirad, S.; Kosari-Nasab, M.; Divband, B. Synthesis of Reduced Graphene Oxide-Silver Nanocomposites and Assessing Their Toxicity on the Green Microalga Chlorella vulgaris. Bionanoscience 2018, 8, 997–1007. [CrossRef] 147. Cao,M.;Wang,M.;Li,L.;Qiu,H.;Padhiar,M.A.;Yang,Z.WearablerGO-AgNW@cottonfiberpiezoresistive sensor based on the fast charge transport channel provided by Ag nanowire. Nano Energy 2018, 50, 528–535. [CrossRef] 148. Xiu, Z.; Zhang, Q.; Puppala, H.L.; Colvin, V.L.; Alvarez, P.J.J. Negligible Particle-Specific Antibacterial Activity of Silver Nanoparticles. Nano Lett. 2012, 12, 4271–4275. [CrossRef] 149. Mirzajani,F.;Ghassempour,A.;Aliahmadi,A.;Esmaeili,M.A.Antibacterialeffectofsilvernanoparticleson Staphylococcus aureus. Res. Microbiol. 2011, 162, 542–549. [CrossRef] © 2019 by the authors. Licensee MDPI, Basel, Switzerland. This article is an open access article distributed under the terms and conditions of the Creative Commons Attribution (CC BY) license (http://creativecommons.org/licenses/by/4.0/).

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