Improving corrosion resistance of additively manufactured nickel–titanium biomedical devices by micro-arc oxidation process
暂无分享,去创建一个
Amirhesam Amerinatanzi | Mohammad Elahinia | Narges Shayesteh Moghaddam | Amir Dehghanghadikolaei | M. Elahinia | A. Amerinatanzi | N. Moghaddam | Hamdy Ibrahim | M. Hashemi | Amir Dehghanghadikolaei | Hamdy Ibrahim | Mahdi Hashemi | N. S. Moghaddam
[1] Narges Shayesteh Moghaddam,et al. Application of the Superelastic NiTi Spring in Ankle Foot Orthosis (AFO) to Create Normal Ankle Joint Behavior , 2017, Bioengineering.
[2] Qingyu Fan,et al. Assessment of osteoinduction using a porous hydroxyapatite coating prepared by micro-arc oxidation on a new titanium alloy. , 2015, International journal of surgery.
[3] Selection of Abrasive Materials for Manufacturing Grinding Wheels , 2018 .
[4] M. Bram,et al. Characterization of porous, net-shaped NiTi alloy regarding its damping and energy-absorbing capacity , 2011 .
[5] J. Nriagu,et al. Nickel and human health : current perspectives , 1992 .
[6] D. Dean,et al. Resorbable bone fixation alloys, forming, and post-fabrication treatments. , 2017, Materials science & engineering. C, Materials for biological applications.
[7] M. Golozar,et al. Influence of cathodic duty cycle on the properties of tungsten containing Al2O3/TiO2 PEO nano-composite coatings , 2018 .
[8] Chuanzhong Chen,et al. Review of the biocompatibility of micro-arc oxidation coated titanium alloys , 2015 .
[9] Chuanzhong Chen,et al. Effect of negative voltage on the microstructure, degradability and in vitro bioactivity of microarc oxidized coatings on ZK60 magnesium alloy , 2014 .
[10] F. Pan,et al. A promising orthopedic implant material with enhanced osteogenic and antibacterial activity: Al2O3-coated aluminum alloy , 2018, Applied Surface Science.
[11] Keyvan Raeissi,et al. Corrosion performance of HVOF and APS thermally sprayed NiTi intermetallic coatings in 3.5% NaCl solution , 2010 .
[12] Amir Dehghanghadikolaei,et al. Sol-gel process applications: A mini-review , 2018 .
[13] Mohamad Kamal Harun,et al. Electrical conductivity studies on PVA/PVP-KOH alkaline solid polymer blend electrolyte , 2005 .
[14] Litian Hu,et al. Characterization of microarc oxidation coatings formed on AM60B magnesium alloy in silicate and phosphate electrolytes , 2007 .
[15] A. Darafsheh,et al. Chapter 25 – Microstructural Characterization and Mechanical Reliability of Laser-Machined Structures , 2018 .
[16] Amirhesam Amerinatanzi,et al. On the effects of selective laser melting process parameters on microstructure and thermomechanical response of Ni-rich NiTi , 2018 .
[17] Horst Meier,et al. On the development of high quality NiTi shape memory and pseudoelastic parts by additive manufacturing , 2014 .
[18] W. Harun,et al. A review of hydroxyapatite-based coating techniques: Sol-gel and electrochemical depositions on biocompatible metals. , 2016, Journal of the mechanical behavior of biomedical materials.
[19] A. Matthews,et al. Anodic processes in plasma electrolytic oxidation of aluminium in alkaline solutions , 2004 .
[20] R. Ghoreishi,et al. Analysis of the influence of cutting parameters on surface roughness and cutting forces in high speed face milling of Al/SiC MMC , 2018, Materials Research Express.
[21] Yong Liu,et al. Effect of annealing on the transformation behavior and superelasticity of NiTi shape memory alloy , 2001 .
[22] Donghui Wang,et al. Sealing the Pores of PEO Coating with Mg-Al Layered Double Hydroxide: Enhanced Corrosion Resistance, Cytocompatibility and Drug Delivery Ability , 2017, Scientific Reports.
[23] Xuelin Zhang,et al. Effects of scan rate on the potentiodynamic polarization curve obtained to determine the Tafel slopes and corrosion current density , 2009 .
[24] Zhonghua Zhang,et al. Ancient technology/novel nanomaterials: casting titanium carbide nanowires , 2010 .
[25] Fu-ping Wang,et al. Biomimetic deposition of apatite coatings on micro-arc oxidation treated biomedical NiTi alloy , 2010 .
[26] Annamaria Gisario,et al. Laser welding of NiTi shape memory sheets using a diode laser , 2018, Optics & Laser Technology.
[27] Yan-sheng Yin,et al. Characterization and corrosion behavior of hydroxyapatite/zirconia composite coating on NiTi fabricated by electrochemical deposition , 2010 .
[28] D. Landolt,et al. Fundamental aspects of electropolishing , 1987 .
[29] J. Duszczyk,et al. Porous TiO₂ surface formed on nickel-titanium alloy by plasma electrolytic oxidation: a prospective polymer-free reservoir for drug eluting stent applications. , 2013, Journal of biomedical materials research. Part B, Applied biomaterials.
[30] A. Ismail,et al. In vitro degradation behavior, antibacterial activity and cytotoxicity of TiO2-MAO/ZnHA composite coating on Mg alloy for orthopedic implants , 2018 .
[31] Dengfeng Yu,et al. Wear resistance of micro-arc oxidation coatings on biomedical NiTi alloy , 2009 .
[32] M. Elahinia,et al. Manufacturing and processing of NiTi implants: A review , 2012 .
[33] M. Elahinia,et al. Microplane modeling of shape memory alloy tubes under tension, torsion, and proportional tension–torsion loading , 2015 .
[34] J. Ciurana,et al. Biomedical production of implants by additive electro-chemical and physical processes , 2012 .
[35] Amirhesam Amerinatanzi,et al. In Vitro Corrosion Assessment of Additively Manufactured Porous NiTi Structures for Bone Fixation Applications , 2018 .
[36] J. Ševčíková,et al. On the Ni-Ion release rate from surfaces of binary NiTi shape memory alloys , 2018 .
[37] D. Grant,et al. Biocompatibility and hemocompatibility of surface-modified NiTi alloys. , 2003, Journal of biomedical materials research. Part A.
[38] J. Luo,et al. Effect of micro-arc oxidation surface modification on the properties of the NiTi shape memory alloy , 2012, Journal of Materials Science: Materials in Medicine.
[39] A. Simchi,et al. Effect of rapid solidification on the microstructure and mechanical properties of hot-pressed Al―20Si―5Fe alloys , 2009 .
[40] J. Planell,et al. New oxidation treatment of NiTi shape memory alloys to obtain Ni-free surfaces and to improve biocompatibility. , 2006, Journal of biomedical materials research. Part B, Applied biomaterials.
[41] David Dean,et al. Metals for bone implants. Part 1. Powder metallurgy and implant rendering. , 2014, Acta biomaterialia.
[42] William E. Frazier,et al. Metal Additive Manufacturing: A Review , 2014, Journal of Materials Engineering and Performance.
[43] Jenn‐Ming Yang,et al. Improving the surface quality and mechanical properties by shot-peening of 17-4 stainless steel fabricated by additive manufacturing , 2016 .
[44] S. D. Hamann,et al. Electrical conductivities of aqueous solutions of KCl, KOH and HCl, and the ionization of water at high shock pressures , 1969 .
[45] H. Man,et al. Fabrication of bioactive titania coating on nitinol by plasma electrolytic oxidation , 2013 .
[46] A. Dehghan Ghadikolaei,et al. Experimental study on the effect of finishing parameters on surface roughness in magneto-rheological abrasive flow finishing process , 2015 .
[47] Amirhesam Amerinatanzi,et al. Additive manufacturing of NiTiHf high temperature shape memory alloy , 2018 .
[48] Brian N. Turner,et al. A review of melt extrusion additive manufacturing processes: II. Materials, dimensional accuracy, and surface roughness , 2015 .
[49] Gary L. Doll,et al. Improving surface finish and wear resistance of additive manufactured nickel-titanium by ultrasonic nano-crystal surface modification , 2017 .
[50] Yinglin Song,et al. Enhanced corrosion resistance and in vitro bioactivity of NiTi alloys modified with hydroxyapatite-containing Al2O3 coatings , 2018, Surface and Coatings Technology.
[51] S. Atre,et al. Effects of atomizing media and post processing on mechanical properties of 17-4 PH stainless steel manufactured via selective laser melting , 2018, Additive Manufacturing.
[52] Jenn‐Ming Yang,et al. In situ formation of TiC-particle-reinforced stainless steel matrix nanocomposites during ball milling: Feedstock powder preparation for selective laser melting at various energy densities , 2018 .
[53] H. Man,et al. Nature of oxide layer formed on NiTi by anodic oxidation in methanol , 2005 .
[54] J. Galvele,et al. Tafel’s law in pitting corrosion and crevice corrosion susceptibility , 2005 .
[55] Berend Denkena,et al. Influence of PVD-coating technology and pretreatments on residual stresses for sheet-bulk metal forming tools , 2016, Prod. Eng..
[56] S. Mirdamadi,et al. Biodegradation behavior of micro-arc oxidized AZ31 magnesium alloys formed in two different electrolytes , 2012 .
[57] M. S. Hefzy,et al. On the Advantages of Superelastic NiTi in Ankle Foot Orthoses , 2016 .
[58] B. Stucker,et al. Improvement in corrosion resistance of friction stir welded aluminum alloys with micro arc oxidation coatings , 2008 .
[59] Lin Li,et al. Chemical Assisted Laser Machining for The Minimisation of Recast and Heat Affected Zone , 2004 .
[60] Amirhesam Amerinatanzi,et al. Fabrication of NiTi through additive manufacturing: A review , 2016 .
[61] David Dean,et al. Metals for bone implants: safety, design, and efficacy , 2016 .
[62] Amir Dehghanghadikolaei,et al. Fatigue performance of selective laser melted Ti6Al4V components: state of the art , 2018, Materials Research Express.
[63] Isabella Faria da Cunha Peixoto,et al. Enhancement of NiTi superelastic endodontic instruments by TiO2 coating. , 2016, Materials science & engineering. C, Materials for biological applications.
[64] T. narayanan,et al. Strategies to improve the corrosion resistance of microarc oxidation (MAO) coated magnesium alloys for degradable implants: Prospects and challenges , 2014 .
[65] David Dean,et al. Process development and characterization of additively manufactured nickel–titanium shape memory parts , 2016 .
[66] Dengfeng Yu,et al. Preparation and properties of titanium oxide film on NiTi alloy by micro-arc oxidation , 2011 .
[67] D. Dean,et al. Finite Element Simulation and Additive Manufacturing of Stiffness-Matched NiTi Fixation Hardware for Mandibular Reconstruction Surgery , 2016, Bioengineering.
[68] M. Elahinia,et al. Anisotropic tensile and actuation properties of NiTi fabricated with selective laser melting , 2018 .
[69] Narges Shayesteh Moghaddam,et al. Shape memory response of porous NiTi shape memory alloys fabricated by selective laser melting , 2018, Journal of Materials Science: Materials in Medicine.
[70] A. Alsaran,et al. Optimization of the coating parameters for micro-arc oxidation of Cp-Ti , 2010 .
[71] F. Liou,et al. Additive manufacturing of a new Fe-Cr-Ni alloy with gradually changing compositions with elemental powder mixes and thermodynamic calculation , 2018 .
[72] L. Yahia,et al. Effect of surface treatment of NiTi alloy on its corrosion behavior in Hanks' solution. , 2002, Journal of biomedical materials research.
[73] L. C. Zhao,et al. Alumina coating formed on medical NiTi alloy by micro-arc oxidation , 2008 .
[74] D. Davy,et al. Osseointegration of surface-blasted implants made of titanium alloy and cobalt-chromium alloy in a rabbit intramedullary model. , 1998, Journal of biomedical materials research.
[75] H. Man,et al. Improvement in corrosion resistance of NiTi by anodization in acetic acid , 2007 .
[76] Amirhesam Amerinatanzi,et al. The Effect of Porosity Type on the Mechanical Performance of Porous NiTi Bone Implants , 2016 .
[77] Dengfeng Yu,et al. The corrosion resistance behavior of Al2O3 coating prepared on NiTi alloy by micro-arc oxidation , 2009 .
[78] M. Sandhyarani,et al. Role of electrolyte chemistry on electronic and in vitro electrochemical properties of micro-arc oxidized titania films on Cp Ti , 2013 .
[79] R. Stępień,et al. New calcium‐free Na2O–Al2O3–P2O5 bioactive glasses with potential applications in bone tissue engineering , 2018 .
[80] Y. Ko,et al. Surface characteristics and biological response of titanium oxide layer formed via micro-arc oxidation in K3PO4 and Na3PO4 electrolytes , 2014 .
[81] Annamaria Gisario,et al. Laser welding of NiTi shape memory alloy: A review , 2018 .
[82] A. C. Bose,et al. Fabrication and characterization of micro-arc oxidized fluoride containing titania films on Cp Ti , 2013 .
[83] A. Nanci,et al. Initial evaluation of bone ingrowth into a novel porous titanium coating. , 2010, Journal of biomedical materials research. Part B, Applied biomaterials.
[84] Gladius Lewis,et al. A Review on Melt-Pool Characteristics in Laser Welding of Metals , 2018 .
[85] C. Wang,et al. Effects of Voltage on Microstructure and Corrosion Resistance of Micro-arc Oxidation Ceramic Coatings Formed on KBM10 Magnesium Alloy , 2017, Journal of Materials Engineering and Performance.
[86] N. Ohtsu,et al. Antibacterial effect of nickel-titanium alloy owing to nickel ion release , 2017 .
[87] David Dean,et al. Microstructural, mechanical and corrosion characteristics of heat-treated Mg-1.2Zn-0.5Ca (wt%) alloy for use as resorbable bone fixation material. , 2017, Journal of the mechanical behavior of biomedical materials.
[88] Narges Shayesteh Moghaddam,et al. Predicting the Biodegradation of Magnesium Alloy Implants: Modeling, Parameter Identification, and Validation , 2018, Bioengineering.
[89] Yushan Yan,et al. Corrosion-Resistant Zeolite Coatings by In Situ Crystallization , 2001 .
[90] Michael J. Miller,et al. Metallic Fixation of Mandibular Segmental Defects: Graft Immobilization and Orofacial Functional Maintenance , 2016, Plastic and reconstructive surgery. Global open.
[91] Gordon P. Bierwagen,et al. Sol–gel coatings on metals for corrosion protection , 2009 .
[92] Amit Bandyopadhyay,et al. Chapter 17 – Laser-Based Additive Manufacturing Processes , 2018 .
[93] Yong Han,et al. Synthesis of nanocrystalline titania films by micro-arc oxidation , 2002 .
[94] Shu Beng Tor,et al. Anisotropy and heterogeneity of microstructure and mechanical properties in metal additive manufacturing: A critical review , 2018 .