Porous TiNbZr alloy scaffolds for biomedical applications

被引:159
|
作者
Wang, Xiaojian [1 ]
Li, Yuncang [1 ]
Xiong, Jianyu [1 ]
Hodgson, Peter D. [1 ]
Wen, Cui'e [1 ]
机构
[1] Deakin Univ, Inst Technol Res & Innovat, Geelong, Vic 3217, Australia
基金
澳大利亚研究理事会;
关键词
Titanium alloy; Scaffold; Mechanical properties; Biocompatibility; BONE-GRAFT SUBSTITUTES; MECHANICAL-PROPERTIES; ELASTIC PROPERTIES; TITANIUM-ALLOYS; POROSITY; TI6AL4V; DEFORMATION; IMPLANTS; INGROWTH; FOAM;
D O I
10.1016/j.actbio.2009.06.002
中图分类号
R318 [生物医学工程];
学科分类号
0831 ;
摘要
In the present study, porous Ti-10Nb-10Zr alloy scaffolds with different porosities were successfully fabricated by a "space-holder" sintering method. By the addition of biocompatible alloying elements the porous TiNbZr scaffolds achieved significantly higher strength than unalloyed Ti scaffolds of the same porosity. In particular, the porous TiNbZr alloy with 59% porosity exhibited an elastic modulus and plateau stress of 5.6 GPa and 137 MPa, respectively. The porous alloys exhibited excellent ductility during compression tests and the deformation mechanism is mainly governed by bending and buckling of the struts. Cell cultures revealed that SaOS2 osteobldst-like cells grew on the surface and inside the pores and showed good spreading. Cell viability for the porous scaffold was three times higher than the solid counterpart. The present study has demonstrated that the porous TiNbZr alloy scaffolds are promising scaffold biomaterials for bone tissue engineering by virtue of their appropriate mechanical properties, highly porous structure and excellent biocompatibility. Crown Copyright (C) 2009 Published by Elsevier Ltd. on behalf of Acta Materialia Inc. All rights reserved.
引用
收藏
页码:3616 / 3624
页数:9
相关论文
共 50 条
  • [31] Gradient Titanium Alloy with Bioactive Hydroxyapatite Porous Structures for Potential Biomedical Applications
    Sadlik, Julia
    Kosinska, Edyta
    Bankosz, Magdalena
    Tomala, Agnieszka
    Bruzda, Grzegorz
    Jampilek, Josef
    Sobczak-Kupiec, Agnieszka
    MATERIALS, 2024, 17 (22)
  • [32] Preparation and properties of porous biphasic calcium phosphate/bioactive glass composite scaffolds for biomedical applications
    Monmaturapoj, Naruporn
    Uanlee, Theerawat
    Nampuksa, Katanchalee
    Kasiwat, Anchittha
    Makornpan, Chalumkwan
    MATERIALS TODAY COMMUNICATIONS, 2022, 33
  • [33] Fabrication and characterization of porous Ti-4Mo alloy for biomedical applications
    Xie, Fangxia
    He, Xueming
    Yu, Jinghu
    Wu, Meiping
    He, Xinbo
    Qu, Xuanhui
    JOURNAL OF POROUS MATERIALS, 2016, 23 (03) : 783 - 790
  • [34] Biodegradable dendritic polymersomes as scaffolds for biomedical applications
    Nazemi, Ali
    Amos, Ryan C.
    Bonduelle, Colin V.
    Gillies, Elizabeth R.
    ABSTRACTS OF PAPERS OF THE AMERICAN CHEMICAL SOCIETY, 2012, 244
  • [35] Biomedical applications of magneto-responsive scaffolds
    Adedoyin, Adedokun A.
    Ekenseair, Adam K.
    NANO RESEARCH, 2018, 11 (10) : 5049 - 5064
  • [36] Kefiran-based scaffolds for biomedical applications
    Toscano M.
    Pavia F.C.
    Conoscenti G.
    Sabatino M.A.
    Carrubba V.L.
    Dispenza C.
    Brucato V.
    Conoscenti, Gioacchino (gioacchino.conoscenti@unipa.it), 2018, Italian Association of Chemical Engineering - AIDIC (64): : 181 - 186
  • [37] Biomedical applications of chitin hydrogel membranes and scaffolds
    Tamura, H.
    Furuike, T.
    Nair, S. V.
    Jayakumar, R.
    CARBOHYDRATE POLYMERS, 2011, 84 (02) : 820 - 824
  • [38] Functional electrospun nanofibrous scaffolds for biomedical applications
    Liang, Dehai
    Hsiao, Benjamin S.
    Chu, Benjamin
    ADVANCED DRUG DELIVERY REVIEWS, 2007, 59 (14) : 1392 - 1412
  • [39] Structural characterization of polymeric scaffolds for biomedical applications
    Fiorentino, S. M.
    Marsich, E.
    Turco, G.
    Grassi, G.
    Grassi, M.
    JOURNAL OF TISSUE ENGINEERING AND REGENERATIVE MEDICINE, 2014, 8 : 442 - 443
  • [40] Biomedical applications of magneto-responsive scaffolds
    Adedokun A. Adedoyin
    Adam K. Ekenseair
    Nano Research, 2018, 11 : 5049 - 5064