Copper incorporation by low-energy ion implantation in PEO-coated additively manufactured Ti6Al4V ELI: surface microstructure, cytotoxicity and antibacterial behavior
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G. A. Longhitano | N. Maurmann | P. Pranke | A. Munhoz | C. Aguzzoli | F. Bernardi | E. K. Baldin | Victor Velho de Castro | R. Frassini | A. D. de Andrade | T. Medeiros | P. B. Santos | Célia de Fraga Malfatti | Mariana Ely Roesh
[1] G. A. Longhitano,et al. Wear Resistance of Plasma Electrolytic Oxidation Coatings on Ti-6Al-4V Eli Alloy Processed by Additive Manufacturing , 2022, Metals.
[2] N. Maurmann,et al. Plasma Electrolytic Oxidation (PEO) Coated CP-Ti: Wear Performance on Reciprocating Mode and Chondrogenic–Osteogenic Differentiation , 2021, Journal of Bio- and Tribo-Corrosion.
[3] M. Marco,et al. Diagnosis and Stratification of Pseudomonas aeruginosa Infected Patients by Immunochemical Quantitative Determination of Pyocyanin From Clinical Bacterial Isolates , 2021, Frontiers in Cellular and Infection Microbiology.
[4] M. Aliofkhazraei,et al. Review of plasma electrolytic oxidation of titanium substrates: Mechanism, properties, applications and limitations , 2021 .
[5] C. Fonseca,et al. Wear performance and osteogenic differentiation behavior of plasma electrolytic oxidation coatings on Ti-6Al-4V alloys: Potential application for bone tissue repairs , 2021, Surface and Coatings Technology.
[6] Mariana Andrade-Figueiredo,et al. Epidemiologia molecular de Staphylococcus aureus no Brasil: elevada frequência de clones epidêmicos|pandêmicos, CA-MRSA e perspectivas futuras / Molecular epidemiology of Staphylococcus aureus in Brazil: high frequency of international epidemic|pandemic clones, CA-MRSA and perspectives , 2021 .
[7] Xiaopeng Lu,et al. Antibacterial activities against Porphyromonas gingivalis and biological characteristics of copper-bearing PEO coatings on magnesium , 2021 .
[8] Gordon Y C Cheung,et al. Pathogenicity and virulence of Staphylococcus aureus , 2021, Virulence.
[9] Minh Tam Tran Thi,et al. Pseudomonas aeruginosa Biofilms , 2020, International journal of molecular sciences.
[10] Guolong Wu,et al. Influence of microstructure of TC4 substrate on the MAO coating , 2019, Surface Engineering.
[11] A. Fattah‐alhosseini,et al. Effect of ZrO2 nanoparticles addition to PEO coatings on Ti–6Al–4V substrate: Microstructural analysis, corrosion behavior and antibacterial effect of coatings in Hank's physiological solution , 2020 .
[12] Vanice Rodrigues Poester,et al. Avaliação do uso da resazurina em teste de suscetibilidade in vitro frente a Sporothrix brasiliensis , 2019 .
[13] Mehrnoush Namavar,et al. Influence of nano-copper oxide concentration on bactericidal properties of silver–copper oxide nanocomposite , 2019, Colloids and Surfaces A: Physicochemical and Engineering Aspects.
[14] H. Engqvist,et al. Effect of Copper Ion Concentration on Bacteria and Cells , 2019, Materials.
[15] Sławomir Jabłoński,et al. Metabolomic studies of Pseudomonas aeruginosa , 2019, World Journal of Microbiology and Biotechnology.
[16] Heng-Li Huang,et al. Antibacterial and biological characteristics of tantalum oxide coated titanium pretreated by plasma electrolytic oxidation , 2019, Thin Solid Films.
[17] M. Peana,et al. The essential metals for humans: a brief overview. , 2019, Journal of inorganic biochemistry.
[18] Z. Zhai,et al. Adaptive antibacterial biomaterial surfaces and their applications , 2019, Materials today. Bio.
[19] R. Valiev,et al. Surface functionalization via PEO coating and RGD peptide for nanostructured titanium implants and their in vitro assessment , 2019, Surface and Coatings Technology.
[20] G. A. Longhitano,et al. Heat treatments effects on functionalization and corrosion behavior of Ti-6Al-4V ELI alloy made by additive manufacturing , 2018, Journal of Alloys and Compounds.
[21] E. Martínez-Campos,et al. Tailoring of antibacterial and osteogenic properties of Ti6Al4V by plasma electrolytic oxidation , 2018, Applied Surface Science.
[22] M. Roesch-Ely,et al. Cytotoxicity and antibacterial efficacy of silver deposited onto titanium plates by low-energy ion implantation , 2018, Journal of Materials Research.
[23] T. H. Oo,et al. Copper deficiency anemia: review article , 2018, Annals of Hematology.
[24] N. Maurmann,et al. Stem Cells from Human Exfoliated Deciduous Teeth Modulate Early Astrocyte Response after Spinal Cord Contusion , 2018, Molecular Neurobiology.
[25] Safian Sharif,et al. A review of powdered additive manufacturing techniques for Ti-6al-4v biomedical applications , 2018 .
[26] H. Choe,et al. Hydroxyapatite coatings containing Zn and Si on Ti-6Al-4Valloy by plasma electrolytic oxidation , 2018 .
[27] T. Vranken,et al. In vitro antimicrobial susceptibility testing methods: agar dilution to 3D tissue-engineered models , 2017, European Journal of Clinical Microbiology & Infectious Diseases.
[28] N. Maurmann,et al. Mesenchymal stem cells cultivated on scaffolds formed by 3D printed PCL matrices, coated with PLGA electrospun nanofibers for use in tissue engineering , 2017 .
[29] B. Kreikemeyer,et al. A dual function of copper in designing regenerative implants. , 2015, Biomaterials.
[30] G. Thompson,et al. Plasma electrolytic oxidation of titanium in a phosphate/silicate electrolyte and tribological performance of the coatings , 2014 .
[31] C. Achete,et al. A study of the physical, chemical and biological properties of TiO2 coatings produced by micro-arc oxidation in a Ca–P-based electrolyte , 2014, Journal of Materials Science: Materials in Medicine.
[32] B. Tang,et al. Microstructure and antibacterial properties of Cu-doped TiO2 coating on titanium by micro-arc oxidation , 2014 .
[33] F. Mücklich,et al. Role of copper oxides in contact killing of bacteria. , 2013, Langmuir : the ACS journal of surfaces and colloids.
[34] R. Minikayev,et al. Dependence of the specific features of two PAPVD methods: Impulse Plasma Deposition (IPD) and Pulsed Magnetron Sputtering (PMS) on the structure of Fe–Cu alloy layers , 2013 .
[35] R. Udayabhaskar,et al. Synthesis and concentration dependent antibacterial activities of CuO nanoflakes. , 2013, Materials science & engineering. C, Materials for biological applications.
[36] Ameer Azam,et al. Antimicrobial activity of metal oxide nanoparticles against Gram-positive and Gram-negative bacteria: a comparative study , 2012, International journal of nanomedicine.
[37] Yan Mei,et al. Preparation of copper nanoparticles coated cellulose films with antibacterial properties through one-step reduction. , 2012, ACS applied materials & interfaces.
[38] Mengxiao Sun,et al. Preparation and antibacterial activities of polyaniline/Cu0.05Zn0.95O nanocomposites. , 2012, Dalton transactions.
[39] I. El‐Mehasseb,et al. CuO nanoparticles: Synthesis, characterization, optical properties and interaction with amino acids , 2012 .
[40] A. Mándi,et al. Protolimonoids and norlimonoids from the stem bark of Toona ciliata var. pubescens. , 2011, Organic & biomolecular chemistry.
[41] M. Dargusch,et al. Biocompatibility and osteoconduction of active porous calcium-phosphate films on a novel Ti-3Zr-2Sn-3Mo-25Nb biomedical alloy. , 2011, Colloids and surfaces. B, Biointerfaces.
[42] M. Rezayi,et al. Determining the antibacterial effect of ZnO nanoparticle against the pathogenic bacterium, Shigella dysenteriae (type 1) , 2011 .
[43] N. Hanagata,et al. Contribution of physicochemical characteristics of nano-oxides to cytotoxicity. , 2010, Biomaterials.
[44] X. Nie,et al. Superhydrophilicity and antibacterial property of a Cu-dotted oxide coating surface , 2010, Annals of Clinical Microbiology and Antimicrobials.
[45] Christofer Leygraf,et al. Surface characteristics, copper release, and toxicity of nano- and micrometer-sized copper and copper(II) oxide particles: a cross-disciplinary study. , 2009, Small.
[46] Y. Huang,et al. Surface modification of medical metals by ion implantation of silver and copper , 2007 .
[47] K. Zdunek. Concept, techniques, deposition mechanism of impulse plasma deposition — A short review , 2007 .
[48] B. Scheffel,et al. Structure and properties of titanium oxide layers deposited by reactive plasma activated electron beam evaporation , 2005 .
[49] K. Klabunde,et al. Metal Oxide Nanoparticles as Bactericidal Agents , 2002 .
[50] D van Steenberghe,et al. The influence of surface free energy and surface roughness on early plaque formation. An in vivo study in man. , 1990, Journal of clinical periodontology.
[51] M. Ahamed,et al. Synthesis, characterization, and antimicrobial activity of copper oxide nanoparticles , 2014 .
[52] S. K. Dolui,et al. Synthesis and evaluation of antioxidant and antibacterial behavior of CuO nanoparticles. , 2013, Colloids and surfaces. B, Biointerfaces.