Browse > Article
http://dx.doi.org/10.5856/JKDS.2018.11.2.71

Corrosion Behaviors of Dental Implant Alloy after Micro-sized Surface Modification in Electrolytes Containing Mn Ion  

Kang, Jung-In (Department of Dental Prosthodontics, College of Dentistry, Chosun University)
Son, Mee-Kyoung (Department of Dental Prosthodontics, College of Dentistry, Chosun University)
Choe, Han-Cheol (Department of Dental Materials, College of Dentistry, Chosun University)
Publication Information
Journal of Korean Dental Science / v.11, no.2, 2018 , pp. 71-81 More about this Journal
Abstract
Purpose: The purpose of this study was to investigate the corrosion behaviors of dental implant alloy after microsized surface modification in electrolytes containing Mn ion. Materials and Methods: $Mn-TiO_2$ coatings were prepared on the Ti-6Al-4V alloy for dental implants using a plasma electrolytic oxidation (PEO) method carried out in electrolytes containing different concentrations of Mn, namely, 0%, 5%, and 20%. Potentiodynamic method was employed to examine the corrosion behaviors, and the alternatingcurrent (AC) impedance behaviors were examined in 0.9% NaCl solution at $36.5^{\circ}C{\pm}1.0^{\circ}C$ using a potentiostat and an electrochemical impedance spectroscope. The potentiodynamic test was performed with a scanning rate of $1.667mV\;s^{-1}$ from -1,500 to 2,000 mV. A frequency range of $10^{-1}$ to $10^5Hz$ was used for the electrochemical impedance spectroscopy (EIS) measurements. The amplitude of the AC signal was 10 mV, and 5 points per decade were used. The morphology and structure of the samples were examined using field-emission scanning electron microscopy and thin-film X-ray diffraction. The elemental analysis was performed using energy-dispersive X-ray spectroscopy. Result: The PEO-treated surface exhibited an irregular pore shape, and the pore size and number of the pores increased with an increase in the Mn concentration. For the PEO-treated surface, a higher corrosion current density ($I_{corr}$) and a lower corrosion potential ($E_{corr}$) was obtained as compared to that of the bulk surface. However, the current density in the passive regions ($I_{pass}$) was found to be more stable for the PEO-treated surface than that of the bulk surface. As the Mn concentration increased, the capacitance values of the outer porous layer and the barrier layer decreased, and the polarization resistance of the barrier layers increased. In the case of the Mn/Ca-P coatings, the corroded surface was found to be covered with corrosion products. Conclusion: It is confirmed that corrosion resistance and polarization resistance of PEO-treated alloy increased as Mn content increased, and PEO-treated surface showed lower current density in the passive region.
Keywords
AC impedance; Corrosion; Manganese; Plasma electrolytic oxidation; Potentiodynamic method; Ti-6Al-4V;
Citations & Related Records
Times Cited By KSCI : 1  (Citation Analysis)
연도 인용수 순위
1 Niinomi M. Recent metallic materials for biomedical applications. Metall Mater Trans. 2002; 33: 477.
2 Saji VS, Choe HC. Nanotechnological applications in tissue and implant engineering. In: Hunter RJ, Preedy VR, eds. Nanomedicine in health and disease. New York: CRC Press; 2011.
3 Byeon IS, Lee K, Choe HC, Brantly WA. Surface morphology of Zn-containing hydroxyapatite (Zn-HA) deposited electrochemically on Ti-xNb alloys. Thin Solid Films. 2015; 587: 163-8.   DOI
4 De Groot K, Geesink R, Klein CP, Serekian P. Plasma sprayed coatings of hydroxylapatite. J Biomed Mater Res. 1987; 21: 1375-81.   DOI
5 Jeong YH, Kim WG, Choe HC. Electrochemical behavior of nano and femtosecond laser textured titanium alloy for implant surface modification. J Nanosci Nanotechnol. 2011; 11: 1581-4.   DOI
6 Lee K, Jeong YH, Ko YM, Choe HC, Brantley WA. Hydroxyapatite coating on micropore-formed titanium alloy utilizing electrochemical deposition. Thin Solid Films. 2013; 549: 154-8.   DOI
7 Sohn SH, Jun HK, Kim CS, Kim KN, Chung SM, Shin SW, Ryu JJ, Kim MK. Biological responses in osteoblast-like cell line according to thin layer hydroxyapatite coatings on anodized titanium. J Oral Rehabil. 2006; 33: 898-911.   DOI
8 Kumari R, Blawert C, Majumdar JD. Microstructures and properties of plasma electrolytic oxidized Ti alloy (Ti-6Al-4V) for bio-implant application. Metall Mater Trans A. 2016; 47: 788-800.
9 Yerokhin AL, Nie X, Leyland A, Matthews A. Characterisation of oxide films produced by plasma electrolytic oxidation of a Ti-6Al-4V alloy. Surf Coat Technol. 2000; 130: 195-206.   DOI
10 Saji VS, Choe HC. Electrochemical corrosion behaviour of nanotubular Ti-13Nb-13Zr alloy in Ringer's solution. Corros Sci. 2009; 51: 1658-63.   DOI
11 Lee K, Choe HC. Effect of the Mg ion containing oxide films on the biocompatibility of plasma electrolytic oxidized Ti-6Al-4V. J Korean Inst Surf Eng. 2016; 49: 135-40.   DOI
12 Xu L, Yu G, Zhang E, Pan F, Yang K. In vivo corrosion behavior of Mg-Mn-Zn alloy for bone implant application. J Biomed Mater Res A. 2007; 83: 703-11.
13 Zhang Z, Gu B, Zhu W, Zhu L. Integrin-mediated osteoblastic adhesion on a porous manganeseincorporated $TiO_{2}$ coating prepared by plasma electrolytic oxidation. Exp Ther Med. 2013; 6: 707-14.   DOI
14 Mayer I, Jacobsohn O, Niazov T, Werckmann J, Iliescu M, Richard-Plouet M, Burghaus O, Reinen D. Manganese in precipitated hydroxyapatites. Eur J Inorg Chem. 2003; 2003: 1445-51.   DOI
15 Park JW, Kim YJ, Jang JH. Surface characteristics and in vitro biocompatibility of a manganesecontaining titanium oxide surface. Appl Surf Sci 2011; 258: 977-85.   DOI
16 Gyorgy E, Toricelli P, Socol G, Iliescu M, Mayer I, Mihailescu IN, Bigi A, Werckman J. Biocompatible $Mn^{2+}$-doped carbonated hydroxyapatite thin films grown by pulsed laser deposition. J Biomed Mater Res A. 2004; 71: 353-8.
17 Paluszkiewicz C, Slosarczyk A, Pijocha D, Sitarz M, Bucko M, Zima A, Chroscicka A, Lewandowska- Szumie M. Synthesis, structural properties and thermal stability of Mn-doped hydroxyapatite. J Mol Struct. 2010; 976: 301-9.   DOI
18 Durdu S, Deniz OF, Kutbay I, Usta M. Characterization and formation of hydroxyapatite on Ti6Al4V coated by plasma electrolytic oxidation. J Alloy Compd. 2013; 551: 422-9.   DOI
19 Huang Y, Ding Q, Han S, Yan Y, Pang X. Characterisation, corrosion resistance and in vitro bioactivity of manganese-doped hydroxyapatite films electrodeposited on titanium. J Mater Sci Mater Med. 2013; 24: 1853-64.   DOI
20 Barik RC, Wharton JA, Wood RJK, Stokes KR, Jones RL. Corrosion, erosion and erosion-corrosion performance of plasma electrolytic oxidation (PEO) deposited $Al_{2}O_{3}$ coatings. Surf Coat Technol. 2005; 199: 158-67.   DOI
21 Huang P, Xu K, Han Y. Formation mechanism of biomedical apatite coatings on porous titania layer. J Mater Sci Mater Med. 2007; 18: 457-63.
22 Pandya HM, Anitha P. Influence of manganese on the synthesis of nano hydroxyapatite by wet chemical method for in vitro applications. AJPCT. 2015; 3: 394-402.
23 Ataherian F, Wu NL. Long-term charge/discharge cycling stability of $MnO_{2}$ aqueous supercapacitor under positive polarization. J Electrochem Soc. 2011; 158: 422-7.   DOI
24 Mostovshchikova EV, Naumov SV, Zainullina RI, Bebenin NG, Arbuzova TI, Solin NI. Electron doped CaMnO3: Mn-site substitution versus Casite substitution. Solid State Phenom. 2015; 233-234: 169-72.   DOI
25 Afshari FT, Kwok JC, Andrews MR, Blits B, Martin KR, Faissner A, Ffrench-Constant C, Fawcett JW. Integrin activation or alpha 9 expression allows retinal pigmented epithelial cell adhesion on Bruch's membrane in wet age-related macular degeneration. Brain. 2010; 133: 448-64.   DOI
26 Rabinovitch M, DeStefano MJ. Manganese stimulates adhesion and spreading of mouse sarcoma I ascites cells. J Cell Biol. 1973; 59: 165-76.   DOI
27 Fujitani W, Hamada Y, Kawaguchi N, Mori S, Daito K, Uchinaka A, Matsumoto T, Kojima Y, Daito M, Nakano T, Matsuura N. Synthesis of hydroxyapatite contining manganese and its evaluation of biocompatibility. Nano Biomed. 2010; 2: 37-46.
28 Bracci B, Torricelli P, Panzavolta S, Boanini E, Giardino R, Bigi A. Effect of $Mg^{2+}$, $Sr^{2+}$, and $Mn^{2+}$ on the chemico-physical and in vitro biological properties of calcium phosphate biomimetic coatings. J Inorg Biochem. 2009; 103: 1666-74.   DOI
29 Jeong YH, Choe HC, Brantly WA. Electrochemical and surface behavior of hydyroxyapatite/Ti film on nanotubular Ti-35Nb-xZr alloys. Appl Surf Sci. 2012; 258: 2129-36.   DOI
30 Goloshchapov DL, Kashkarov VM, Rumyantseva NA, Seredin PV, Lenshin AS, Agapov BL, Domashevskaya EP. Synthesis of nanocrystalline hydroxyapatite by precipitation using hen's eggshell. Ceramics Int. 2013; 39: 4539-49.   DOI
31 Zhu S, Liu Z, Qu R, Wang L, Li Q, Guan S. Effect of rare earth and Mn elements on the corrosion behavior of extruded AZ61 system in 3.5 wt% NaCl solution and salt spray test. J Magnes Alloys. 2013; 1: 249-55.   DOI
32 Franks W, Schenker I, Schmutz P, Hierlemann A. Impedance characterization and modeling of electrodes for biomedical applications. IEEE Trans Biomed Eng. 2005; 52: 1295-302.   DOI
33 Walsh FC, Low CTJ, Wood RJK, Stevens KT, Archer J, Poeton AR, Ryder A. Plasma electrolytic oxidation (PEO) for production of anodised coatings on lightweight metal (Al, Mg, Ti) alloys. Trans IMF. 2009; 87: 122-35.   DOI
34 Dehnavi V, Shoesmith DW, Luan BL, Yari M, Liu XY, Sohrab R. Corrosion properties of plasma electrolytic oxidation coatings on an aluminium alloy: the effect of the PEO process stage. Mater Chem Phys. 2015; 161: 49-58.   DOI
35 Matykina E, Arrabal R, Skeldon P, Thompson GE. Investigation of the growth processes of coatings formed by AC plasma electrolytic oxidation of aluminium. Electrochim Acta. 2009; 54: 6767-78.   DOI
36 Gonzalez JEG, Mirza-Rosca JC. Study of the corrosion behavior of titanium and some of its alloys for biomedical and dental implant applications. J Electroanal Chem. 1999; 471: 109-15.   DOI