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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