Plasma Electrolytic Oxidation for Dental Implant Surface Treatment

被引:1
|
作者
Muraev, A. A. [1 ]
Murzabekov, A. I. [2 ]
Ivanov, S. Yu. [1 ,3 ]
Tarasov, Yu. V. [4 ]
Orlov, E. A. [4 ]
Dolgalev, A. A. [5 ]
机构
[1] RUDN Univ, Peoples Friendship Univ Russia, 6 Miklukho Maklaya St, Moscow 117198, Russia
[2] Polyclin Presidential Adm Russian Federat, Cent Clin Hosp, 15 Marshal Timoshenko St, Moscow 121359, Russia
[3] IM Sechenov First Moscow State Med Univ, 8-2 Trubetskaya St, Moscow 119991, Russia
[4] Skolkovo Innovat Ctr, Beta Tech Med LLC, Bldg 1,42 Bolshoy Blvd, Moscow 121205, Russia
[5] Stavropol State Med Univ, 310 Mira St, Stavropol 355017, Russia
关键词
dental implant; osteointegration; implant surface treatment techniques; plasma electrolytic oxidation; hydroxyapatite; calcium hydroxyphosphate; TITANIUM-ALLOY; ROUGHNESS;
D O I
10.17691/stm2023.15.3.02
中图分类号
R-3 [医学研究方法]; R3 [基础医学];
学科分类号
1001 ;
摘要
Current technologies of plasma electrolytic oxidation (PEO) for modifying the surfaces of dental implants made of the Grade IV titan alloy provide predictable long-term results in implant dentistry. The aim of the study is to evaluate the efficacy of PEO technology comparing two types of surface modification of dental implants made of VT1-0 medical titanium alloy. Materials and Methods. 50 IRIS dental implants (Scientific Production Company LICOSTOM, Russia), 10-mm long and 4 mm in diameter, were manufactured from the VT1-0 alloy. The implant surface was treated by two PEO methods: 1) in the aqueous solution of alkaline electrolyte without any additional modifiers (PEO- Ti); 2) in the aqueous solution of orthophosphoric acid-based electrolyte containing calcium carbonate (PEO-Ca). Implants made of VT1-0 alloy after milling and without additional treatment served as control samples. The implant surfaces were studied by electron microscopy and energy dispersive X-ray spectrometry. Some of the implants were installed in sheep, samples were obtained at 2, 4, and 8 weeks and studied by microcomputer tomography. Results. Regardless of the electrolyte composition, a highly developed porous surface was formed in the samples with PEO-modified surfaces. The surface of the PEO-Ti samples in a simple unmodified electrolyte was characterized by a large number of open pores with a wide range of size distribution from 200 nm to 3 mu m. The pore size distribution was of a monomodal character, with a maximum near 0.23 mu m. The PEO samples in the Ca-containing electrolyte had pores also in a wide range from similar to 80 nm to similar to 7 mu m. The pore distribution, in contrast to PEO- Ti, was bimodal in nature, with the main maximum in the region of 1.05 mu m and the concomitant maximum near 2.45 mu m. The obtained surfaces of both types (PEO with Ca and Ti) possessed high purity and optimal microroughness for osseointegration. Both types of PEO treatment (PEO with Ca and Ti) have demonstrated a similar osseointegrative potential, nevertheless, the surface of the PEO-Ca showed a better contact with the implant surface (49.8%) than PEO-Ti (42.4%) obviously due to the presence of calcium in its composition. Conclusion. The PEO-formed implant surfaces demonstrate high osseointegrative properties after any variants of treatment and show the potential for application in osteoporosis.
引用
收藏
页码:18 / 24
页数:7
相关论文
共 50 条
  • [21] Simultaneous reduction of wear and corrosion of titanium, magnesium and zirconium alloys by surface plasma electrolytic oxidation treatment
    Nykyforchyn, H. M.
    Agarwala, V. S.
    Klapkiv, M. D.
    Posuvailo, V. M.
    CORROSION IN THE MILITARY II, 2008, 38 : 27 - +
  • [22] Improving Biodegradable Mg-Zn(-Ca) Alloys by Surface Treatment via Plasma Electrolytic Oxidation
    Vertal', Jakub
    Kajanek, Daniel
    Kubasek, Jiri
    Minarik, Peter
    MATERIALS, 2025, 18 (04)
  • [23] Plasma electrolytic oxidation of hafnium
    Stojadinovic, Stevan
    Tadic, Nenad
    Vasilic, Rastko
    INTERNATIONAL JOURNAL OF REFRACTORY METALS & HARD MATERIALS, 2017, 69 : 153 - 157
  • [24] Plasma electrolytic oxidation of brass
    Cheng, Yulin
    Zhu, Zhunda
    Zhang, Qinghe
    Zhuang, XiuJuan
    Cheng, Yingliang
    SURFACE & COATINGS TECHNOLOGY, 2020, 385
  • [25] Plasma electrolytic oxidation of metals
    Stojadinovic, Stevan
    JOURNAL OF THE SERBIAN CHEMICAL SOCIETY, 2013, 78 (05) : 713 - 716
  • [26] Plasma electrolytic oxidation of AMCs
    Morgenstern, R.
    Sieber, M.
    Lampke, T.
    18TH CHEMNITZ SEMINAR ON MATERIALS ENGINEERING, 2016, 118
  • [27] Plasma electrolytic oxidation of tungsten
    Stojadinovic, Stevan
    Nelson, Pedro
    MATERIALS LETTERS, 2024, 365
  • [28] Achieving surface chemical and morphologic alterations on tantalum by plasma electrolytic oxidation
    Pinto Cardoso Goularte, Marcelo Augusto
    Barbosa, Gustavo Frainer
    da Cruz, Nilson Cristino
    Hirakata, Luciana Mayumi
    INTERNATIONAL JOURNAL OF IMPLANT DENTISTRY, 2016, 2
  • [29] Thermostimulated luminescence of plasma electrolytic oxidation coatings on 6082 aluminium surface
    Zolotarjovs, Aleksejs
    Smits, Krisjanis
    Laganovska, Katrina
    Bite, Ivita
    Grigorjeva, Larisa
    Auzins, Krisjanis
    Millers, Donats
    Skuja, Linards
    RADIATION MEASUREMENTS, 2019, 124 : 29 - 34
  • [30] Plasma electrolytic oxidation for surface protection of aluminium, magnesium and titanium alloys
    Curran, J. A.
    TRANSACTIONS OF THE INSTITUTE OF METAL FINISHING, 2011, 89 (06): : 295 - 297