用户名: 密码: 验证码:
Calcium phosphate deposition on surface of porous and dense TiNi alloys in simulated body fluid
详细信息    查看全文
  • 作者:Jue Liu 刘珏 ; Chao Liu 刘超 ; Jing Li 李婧 ; Min Liu 刘敏…
  • 刊名:Journal of Central South University
  • 出版年:2016
  • 出版时间:January 2016
  • 年:2016
  • 卷:23
  • 期:1
  • 页码:1-9
  • 全文大小:6,306 KB
  • 参考文献:[1]BARRERE F, van BLITTERSWIJK C A, de GROOT K, LAYROLLE P. Nucleation of biomimetic Ca-P coatings on Ti6Al4V from a SBF×5 solution: Influence of magnesium [J]. Biomaterials, 2002, 23: 2211–2220.CrossRef
    [2]AN S H, MATSUMOTO T, MIYAJIMA H, SASAKI J I, NARAYANAN R, KIM K H. Surface characterization of alkali- and heat-treated Ti with or without prior acid etching [J]. Appl Surf Sci, 2012, 258: 4377–4382.CrossRef
    [3]CHEN Xiao-bo, LI Yun-cang, HODGSON P D, WEN Cui-e. Microstructures and bond strengths of the calcium phosphate coatings formed on titanium from different simulated body fluids [J]. Mater Sci Eng C, 2009, 29: 165–171.CrossRef
    [4]ZHANG J X, GUAN R F, ZHANG X P. Synthesis and characterization of sol-gel hydroxyapatite coatings deposited on porous TiNi alloys [J]. J Alloy Compd, 2011, 509: 4643–4648.CrossRef
    [5]ZHENG C Y, NIE F L, ZHENG Y F, CHENG Y, WEI S C, VALIEV R Z. Enhanced in vitro biocompatibility of ultrafine-grained biomedical TiNi alloy with microporous surface [J]. Appl Surf Sci, 2011, 257: 9086–9093.CrossRef
    [6]RIBEIRO A A, BALESTRA R M, ROCHA M N, PERIPOLLI S B, ANDRADE M C, PEREIRA L C, OLIVEIRA M V. Dense and porous titanium substrates with a biomimetic calcium phosphate coating [J]. Appl Surf Sci, 2013, 265: 250–256.CrossRef
    [7]UGUR T, MUSTAFA G. The effect of surface treatment on CaP deposition of Ti6Al4V open cell foams in SBF solution [J]. Ceram Int, 2010, 36: 1805–1816.CrossRef
    [8]ZHANG Qi-yi, LENG Yang, XIN Ren-long. A comparative study of electrochemical deposition and biomimetic deposition of calcium phosphate on porous titanium [J]. Biomaterials, 2005, 26: 2857–2865.CrossRef
    [9]MONMA H. Electrolytic depositions of calcium phosphates on substrate [J]. J Mater Sci, 1994, 29: 949–953.CrossRef
    [10]FILAGGI M J, COOMBS N A, PILLIAR R M. Characterization of the interface in the plasma-sprayed HA coating/Ti-6Al-4V implant system [J]. J Biomed Mater Res, 1991, 25: 1211–1219.CrossRef
    [11]HAYASHI K, MASHIMA T, UENOYAMA K. The effect of hydroxyapatite coating on bony ingrowth into grooved titanium implants [J]. Biomaterials, 1999, 20: 111–119.CrossRef
    [12]LACEFIELD W R. Hydroxyapatite coatings [J]. Ann Biomed Mater Res, 1988, 523: 73–80.
    [13]BOULTON L M, GREGSON P J, TUKE M, BALDWIN T. Adhesively bonded hydroxyapatite coating [J]. Mater Lett, 1991, 12: 1–6.CrossRef
    [14]WEI M, RUYS A J, MILTHORPE B K, SORRELL C C. Solution ripening of hydroxyapatite nanoparticles: effects on electrophoretic deposition [J]. J Biomed Mater Res, 1999, 45: 11–19.CrossRef
    [15]WEI M, KIM H M, KOKUBO T, EVANS J H. Optimising the bioactivity of alkaline-treated titanium alloy [J]. Mater Sci Eng C, 2002, 20: 125–134.CrossRef
    [16]LIANG Fang-hui, ZHOU Lian, WANG Ke-guang. Apatite formation on porous titanium by alkali and heat-treatment [J]. Surf Coat Tech, 2003, 165: 133–139.CrossRef
    [17]KOKUBO T, TAKADAMA H. How useful is SBF in predicting in vivo bone bioactivity [J]. Biomaterials, 2006, 27: 2907–2915.CrossRef
    [18]KOKUBO Tadashi. Design of bioactive bone substitutes based on biomineralization process [J]. Mater Sci Eng C, 2005, 25: 97–104.CrossRef
    [19]KIM H M, MIYAJI F, KOKUBO T, NAKAMURA T. Bonding strength of bonelike apatite layer to Ti metal substrate [J]. J Biomed Mater Res, 1997, 38: 121–127.CrossRef
    [20]KIM H M, MIYAJI F, KOKUBO T, NISHIGUCHI S, NAKAMURA T. Graded surface structure of bioactive titanium prepared by chemical treatment [J]. J Biomed Mater Res, 1999, 45: 100–107.CrossRef
    [21]WEN H B, LIU Q, de WIJIN J R, de GROOT K, CUI F Z. Preparation of bioactive microporous titanium surface by a new two-step chemical treatment [J]. J Mater Sci Mater Med, 1998, 9: 121–128.CrossRef
    [22]LI P, OHTSUKI C, KOKUBO T, NAKANISHI K, SOGA N, de GROOT K. The role of hydrated silica, titania, and alumina in inducing apatite on implants [J]. J Biomed Mater Res, 1994, 28: 7–15.CrossRef
    [23]KOKUBO T, MIYAJI F, KIM H M, NAKAMURA T. Spontaneous apatite formation on chemically treated titanium metals [J]. J Am Ceram Soc, 1996, 79: 1127–1129.CrossRef
    [24]ADRIANA B, ELISA B, BARBARA B, ALESSANDRO F, SILVIA P, FRANCESCO S, LUIGINA S. Nanocrystalline hydroxyapatite coatings on titanium: A new fast biomimetic method [J]. Biomaterials, 2005, 26: 4085–4089.CrossRef
    [25]LEE B H, KIM Y D, SHIN J H, LEE K H. Surface modification by alkali and heat treatments in titanium alloys [J]. J Biomed Mater Res, 2002, 61: 466–473.CrossRef
    [26]TURKAN U, GUDEN M. The effect of nitric acid surface treatment on CaP deposition of Ti6Al4V open-cell foams in SBF solution [J]. Surf Coat Tech, 2010, 205: 1904–1916.CrossRef
    [27]SEPAHVANDI A, MOZTARZADEH F, MOZAFARI M, GHAFFARI M, RAEE N. Photoluminescence in the characterization and early detection of biomimetic bone-like apatite formation on the surface of alkaline-treated titanium implant: State of the art [J]. Colloid Surface B, 2011, 86: 390–396.CrossRef
    [28]KOKUBO T, MATSUSHITA T, TAKADAMA H, KIZUKI T. Development of bioactive materials based on surface chemistry [J]. J Eur Ceram Soc, 2009, 29: 1267–1274.CrossRef
    [29]TAKADAMA H, KIM H M, KOKUBO T, NAKAMURA T. TEM-EDX study of mechanism of bonelike apatite formation on bioactive titanium metal in simulated body fluid [J]. J Biomed Mater Res, 2001, 57: 441–448.CrossRef
    [30]MOZAFARI M, MOZTARZADEH F. Controllable synthesis, characterization and optical properties of colloidal PbS/gelatin core-shell nanocrystals [J]. J Colloid Interf Sci, 2010, 351: 442–448.CrossRef
    [31]MOZAFARI M, MOZTARZADEH F, TAHRIRI M. Green synthesis and characterization of spherical PbS luminescent nanocrystals via wet-chemical technique [J]. Adv Appl Ceram, 2011, 110: 30–34.CrossRef
    [32]KIM H M, MIYAJI F, KOKUBO T, NAKAMURA T. Apatite forming ability of alkali-treated Ti metal in body environment [J]. J Ceram Soc Jpn, 1997, 105: 111–116.CrossRef
    [33]LU X, WANG Y B, YANG X D, ZHANG Q Y, ZHAO Z F, WENG L T, LENG Y. Spectroscopic analysis of titanium surface functional groups under various surface modification and their behaviors in vitro and in vivo [J]. J Biomed Mater Res A, 2008, 84A: 523–534.CrossRef
    [34]KIM H M, MIYAJI F, KOKUBO T. Effect of heat treatment on apatite-forming ability of Ti metal induced by alkali treatment [J]. J Res, 1988, 523: 73–80.
  • 作者单位:Jue Liu 刘珏 (1)
    Chao Liu 刘超 (1)
    Jing Li 李婧 (1)
    Min Liu 刘敏 (1)
    Jian-ming Ruan 阮建明 (1)

    1. State Key Laboratory of Powder Metallurgy, Central South University, Changsha, 410083, China
  • 刊物类别:Engineering
  • 刊物主题:Engineering, general
    Metallic Materials
    Chinese Library of Science
  • 出版者:Central South University, co-published with Springer
  • ISSN:2227-5223
文摘
Porous and dense TiNi alloys were successfully fabricated by powder metallurgy (P/M) method, and to further improve their surface biocompatibility, surface modification techniques including grind using silicon-carbide (SiC) paper, acid etching and alkali treatment were employed to produce either irregularly rough surface or micro-porous surface roughness. X-ray diffractometry (XRD), scanning electron microscopy (SEM) and energy dispersive X-ray spectroscopy (EDX) attached to SEM were used to characterize surface structure and the Ca-P coatings. Effects of the above surface treatments on the surface morphology, apatite forming ability were systematically investigated. Results indicate that all the above surface treatments increase the apatite forming ability of TiNi alloys in varying degrees when soaked in simulated body fluid (SBF). More apatite coatings formed on TiNi samples sintered at 1050° and 1100° due to their high porosity and pure TiNi phase that is beneficial to heterogeneous nucleation. Furthermore, more uniform apatite was fabricated on the sample sintered from the mixture of Ni and Ti powders.

© 2004-2018 中国地质图书馆版权所有 京ICP备05064691号 京公网安备11010802017129号

地址:北京市海淀区学院路29号 邮编:100083

电话:办公室:(+86 10)66554848;文献借阅、咨询服务、科技查新:66554700