Facile Coating of HAP on Ti6Al4V for Osseointegration

被引:1
作者
Asrar, Shafaq [1 ]
Tufail, Muhammad [2 ]
Chandio, Ali Dad [1 ]
机构
[1] NED Univ Engn & Technol, Dept Met Engn, Karachi, Pakistan
[2] NED Univ Engn & Technol, Karachi, Pakistan
关键词
corrosion; electrophoretic deposition; hydroxiapatite; simulated body fluid; Ti6Al4V alloy; ELECTROPHORETIC DEPOSITION; TITANIUM-ALLOY; HYDROXYAPATITE COATINGS; BIOMEDICAL APPLICATIONS; MECHANICAL-PROPERTIES; SURFACE MODIFICATION; STAINLESS-STEEL; NANOCOMPOSITE; IMPLANTS;
D O I
10.48084/etasr.4155
中图分类号
T [工业技术];
学科分类号
08 ;
摘要
Ti6Al4V alloy is a material with great strength, low-slung modulus, inferior density, and a virtuous blend of mechanical and exceptional corrosion resistance. However, it does not offer good osseointegration and bone development properties. Conversely, hydroxyapatite (HAP) is highly bioactive in nature to bind with the nearby bone tissues when implanted in the host body. In this work, we have extracted HAP from bovine bones by using the thermal decomposition method. This was followed by its deposition onto the Ti6Al4V alloy using the Electrophoretic Deposition (EPD) technique. TiO2 is used as a bond coat layer to increase the adhesion between HAP and Ti6Al4V alloy substrates. The coated samples after sintering exhibited excellent adhesion. This was followed by characterization using Scanning Electron Microscopy (SEM) and Fourier Transformed Infrared Spectroscopy (FTIR). FTIR and SEM confirm the formation of HAP and its presence after the immersion in SBF. Vicker hardness tester confirms the increase in hardness value of coated samples up to 35%. Potentiostat tests were conducted to compare the corrosion rate of both samples. In addition, the particle sizes were also identified by a laser particle analyzer, whereas X-Ray Diffraction (XRD) technique was also used to determine the crystalline phases of alloy and HAP.
引用
收藏
页码:7240 / 7246
页数:7
相关论文
共 56 条
  • [1] Electrophoretic deposition of hydroxyapatite coatings on titanium from dimethylformamide suspensions
    Abdeltawab, A. A.
    Shoeib, M. A.
    Mohamed, S. G.
    [J]. SURFACE & COATINGS TECHNOLOGY, 2011, 206 (01) : 43 - 50
  • [2] Antibacterial Ti-Mn-Cu alloys for biomedical applications
    Alqattan, Mohammad
    Peters, Linda
    Alshammari, Yousef
    Yang, Fei
    Bolzoni, Leandro
    [J]. REGENERATIVE BIOMATERIALS, 2021, 8 (01)
  • [3] Aroussi D, 2019, ENG TECHNOL APPL SCI, V9, P5093
  • [4] Preparation of titanium oxide and hydroxyapatite on Ti-6Al-4V alloy surface and electrochemical behaviour in bio-simulated fluid solution
    Benea, Lidia
    Mardare-Danaila, Eliza
    Mardare, Marilena
    Celis, Jean-Pierre
    [J]. CORROSION SCIENCE, 2014, 80 : 331 - 338
  • [5] Bhasin S.S., 2015, J INT CLIN DENT RES, P148, DOI [10.4103/2231-0754.172936, DOI 10.4103/2231-0754.172936]
  • [6] Boudjemline A, 2020, ENG TECHNOL APPL SCI, V10, P6062
  • [7] Metallic implant biomaterials
    Chen, Qizhi
    Thouas, George A.
    [J]. MATERIALS SCIENCE & ENGINEERING R-REPORTS, 2015, 87 : 1 - 57
  • [8] Investigation on hydroxyapatite coatings formation on titanium surface
    Ciobanu, G.
    Harja, M.
    [J]. 8TH INTERNATIONAL CONFERENCE ON ADVANCED CONCEPTS IN MECHANICAL ENGINEERING, 2018, 444
  • [9] DAMISIH IN, 1964, AIP CONF PROC
  • [10] The effect on bone growth enhancement of implant coatings with hydroxyapatite and collagen deposited electrochemically and by plasma spray
    Daugaard, Henrik
    Elmengaard, Brian
    Bechtold, Joan E.
    Jensen, Thomas
    Soballe, Kjeld
    [J]. JOURNAL OF BIOMEDICAL MATERIALS RESEARCH PART A, 2010, 92A (03) : 913 - 921