Page 123 - IJB-8-1
P. 123

Lou, et al.
           45.  Jena  G,  Vanithakumari  SC,  Polaki  SR, et al., 2019,      https://doi.org/10.1038/nrmicro3028
               Electrophoretically  Deposited  Graphene  Oxide-polymer   56.  Perreault F, de Faria AF, Nejati S, et al., 2015, Antimicrobial
               Bilayer  Coating  on  Cu-Ni Alloy  with  Enhanced  Corrosion   Properties of Graphene Oxide Nanosheets: Why Size Matters.
               Resistance  in  Simulated  Chloride  Environment.  J  Coat   ACS Nano, 9:7226–36.
               Technol Res, 16:1317–35.                            https://doi.org/10.1021/acsnano.5b02067
               https://doi.org/10.1007/s11998-019-00213-6      57.  Chung H, Kim MJ, Ko K, et al., 2015, Effects of Graphene
           46.  Gautier N, 1995, Theoretical Study of the Interaction between   Oxides on Soil Enzyme Activity and Microbial Biomass. Sci
               a  Magnetic  Nanotip  and  a  Magnetic  Surface.  Phys Rev  B,   Total Environ, 514:307–13.
               52:7352–62.                                         https://doi.org/10.1016/j.scitotenv.2015.01.077
               https://doi.org/10.1103/PhysRevB.52.7352        58.  Gurunathan S, Han JW, Dayem AA, et al., 2013, Antibacterial
           47.  Stone HA, Lister JR, Brenner MP, 1999, Drops with Conical   Activity of Dithiothreitol  Reduced  Graphene  Oxide.  J  Ind
               Ends in Electric and Magnetic Fields. Proc R Soc A Math   Eng Chem, 19:1280–8.
               Phys Eng Sci, 455:329–47.                           https://doi.org/10.1016/j.jiec.2012.12.029
               https://doi.org/10.1098/rspa.1999.0316          59.  Das KK, Das SN, Dhundasi SA, 2008, Nickel, its Adverse
           48.  Pavithra CL, Sarada BV, Rajulapati KV, et al., 2014, A New   Health Effects and Oxidative. Indian J Med Res, 128:412–25.
               Electrochemical  Approach  for the Synthesis of Copper-  60.  Abdel-Rahman LH, Abu-Dief AM, Moustafa H, et al., 2020,
               Graphene Nanocomposite Foils with High Hardness. Sci Rep,   Design  and  Nonlinear  Optical  Properties  (NLO) Using
               4:4049.                                             DFT Approach of New Cr(III), VO(II), and Ni(II) Chelates
               https://doi.org/10.1038/srep04049                   Incorporating Tri-dentate Imine Ligand for DNA Interaction,
           49.  Qiu J, Liu L, Qian S, et al., 2021, Why does Nitrogen-doped   Antimicrobial, Anticancer Activities and Molecular Docking
               Graphene Oxide Lose the Antibacterial Activity? J Mater Sci   Studies. Arab J Chem, 13:649–70.
               Technol, 62:44–51.                                  https://doi.org/10.1016/j.arabjc.2017.07.007
               https://doi.org/10.1016/j.jmst.2020.05.051      61.  Ohtste  N,  Hirano  Y,  Yamaguchi  K, et  al., 2019, Surface
           50.  Shuai C, Guo W, Gao C, et al., 2018, An nMgO Containing   Characteristics,  Ni  ion  Release,  and Antibacterial  Efficacy
               Scaffold: Antibacterial Activity, Degradation Properties and   of Anodized NiTi Alloy Using HNO  Electrolyte of Various
                                                                                             3
               Cell Responses. Int J Bioprint, 4:120.              Concentrations. Appl Surf Sci, 492:785–91.
               https://doi.org/10.18063/IJB.v4i1.120               https://doi.org/10.1016/j.apsusc.2019.06.243
           51.  Xie  B,  Zhao  MC,  Xu  R, et al.,  2021,  Biodegradation,   62.  Vanithakumari SC, Jena G, Sofia S, et al., 2020, Fabrication
               Antibacterial Performance, and Cytocompatibility of a Novel   of Superhydrophobic  Titanium  Surfaces  with  Superior
               ZK30-Cu-Mn Biomedical Alloy Produced by Selective Laser   Antibacterial Properties Using Graphene Oxide and Silanized
               Melting. Int J Bioprint, 7:78–89.                   Silica Nanoparticles. Surf Coat Technol, 400:126074.
               https://doi.org/10.18063/ijb.v7i1.300               https://doi.org/10.1016/j.surfcoat.2020.126074
           52.  Park HJ, Kim JY, Kim J, et al., 2009, Silver-ion-mediated   63.  Liu  S,  Zeng  TH,  Hofmann  M, et al.,  2011, Antibacterial
               Reactive Oxygen Species Generation Affecting Bactericidal   Activity of Graphite, Graphite Oxide, Graphene Oxide, and
               Activity. Water Res, 43:1027–32.                    Reduced Graphene Oxide: Membrane and Oxidative Stress.
               https://doi.org/10.1016/j.watres.2008.12.002        ACS Nano, 5:6971–80.
           53.  Chernousova  S,  Epple  M,  2013,  Silver  as  Antibacterial      https://doi.org/10.1021/nn202451x
               Agent: Ion, Nanoparticle, and Metal. Angew Chemie Int Ed,   64.  Salas  E  C,  Sun  Z,  Luttge  A, et al., 2010, Reduction of
               52:1636–53.                                         Graphene  Oxide  via  Bacterial  Respiration.  ACS Nano,
               https://doi.org/10.1002/anie.201205923              4:4852–6.
           54.  Kedziora  A,  Speruda  M,  Krzyzewska  E, et al., 2018,      https://doi.org/10.1021/nn101081t
               Similarities and Differences between Silver Ions and Silver   65.  Panda S, Rout TK, Prusty AD, et al., 2018, Electron Transfer
               in Nanoforms as Antibacterial Agents. Int J Mol Sci, 19:444.  Directed  Antibacterial  Properties of  Graphene Oxide on
               https://doi.org/10.3390/ijms19020444                Metals. Adv Mater, 30:1702149.
           55.  Lemire  JA,  Harrison  JJ,  Turner  RJ,  2013,  Antimicrobial      https://doi.org/10.1002/adma.201702149
               Activity  of Metals: Mechanisms, Molecular  Targets and   66.  Qiu J, Wang D, Geng H, et al., 2017, How Oxygen-Containing
               Applications. Nat Rev Microbiol, 11:371–84.         Groups on Graphene Influence the Antibacterial Behaviors.

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