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低温去合金化脱镍处理镍钛记忆合金的表面特性 被引量:2

Surface Characteristics of NiTi Alloys Modified by Dealloying at Low Temperature
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摘要 采用低温去合金化(Dealloying)处理法对医用NiTi合金进行表面脱镍改性。经SEM、XRD、AES、FTIR、XPS和模拟体液(SBF)仿生沉积等分析研究表明,NiTi合金经低温去合金化处理后,在合金表面选择性地除去了有害元素镍,在距表层约400nm深度内原位制备出完全无镍的具有纳米网架结构的水合氧化钛膜,并在500℃,进行1h热处理,晶化为锐钛矿型二氧化钛。由于经低温去合金化脱镍的NiTi合金表面富含羟基(OH-),在SBF溶液中具有良好的生物活性,从而提高了NiTi合金的生物相容性。 A dealloying treatment method was applied to the surface modification of nearly equiatomic NiTi alloy so as to remove the harmful element of nickel selectively from NiTi alloys and form a Ni-free titanium oxide layer on the surface.Sample surfaces were analyzed by SEM,XRD,AES,FTIR and XPS,and then samples were immersed in SBF solution for 14 d in order to observe the bioactivity.The results show that the dealloying treatment of NiTi alloy at low temperature leads to 400 nm thick Ni-free surface layer that possesses a nanometer grid structure,and titania surface is in situ formed that possesses a degree of bioactivity because of the combination of hydroxyl (OH-) group in the process of dealloying treatment simultaneously.As-prepared titania layer was changed into anatase after heated at 500 ℃ for 1 h.As a consequence,the dealloying treatment method could improve biocompatibility of NiTi alloys.
出处 《稀有金属材料与工程》 SCIE EI CAS CSCD 北大核心 2011年第8期1446-1449,共4页 Rare Metal Materials and Engineering
基金 贵州省重点科学技术项目(GY20073006)
关键词 NITI 记忆合金 去合金化 脱镍 表面改性 氧化钛 NiTi alloy memory alloy dealloying removal of Ni surface modification titania
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参考文献18

  • 1Shabalovskaya S Aet al. Journal of Vacuum Science Technology[J], 1995, A13(5): 26-24.
  • 2杨贤金,何菲,朱胜利,崔振铎,姚康德.化学修饰对NiTi形状记忆合金氧化膜的影响[J].功能材料,2002,33(2):169-171. 被引量:9
  • 3Ryhanen J et al. Journal of Biomedical Materials Research[J], 1997, 35:451.
  • 4Tan L et al. Acta Materials[J], 2002, 50:4449.
  • 5Lackner J M et al. Surface & Coatings Technology[J], 2004, (180-181): 585.
  • 6Cheng F T et al. Materials Letters[J], 2005, 59:1516.
  • 7Man H C et al. Scripta Materialia[J], 2001, 45:1447.
  • 8Ray W Y Poon et al. Materials Science & Engineering A[J], 2005, 390:444.
  • 9Liu J X et al. Thin Solid Films[J], 2003, 429:225.
  • 10Cisse O et al. Journal of Biomedical Materials Research[J], 2002, 61:339.

二级参考文献37

  • 1欧亚,陈安玉.多孔羟基磷灰石陶瓷诱导成骨的作用[J].中国生物医学工程学报,1993,12(4):275-279. 被引量:8
  • 2[1]Brailovaki V, Trochu F. [J]. Biomedical Materials and Engineering, 1996,6: 291-298.
  • 3[2]Trochu F, Brailovaki V, Meunier M A, et al. [J]. Bio-Medical Materials and Engineering, 1996,6 : 389-403.
  • 4[3]Andreasen G F, Hilleman T B. [J]. J Am Dent Assoc, 1971, 82:1373-1375.
  • 5[4]Gardella Jr J A, De Gatrica N I H. [J]. J Electron Spectrosc Relat Phenom, 1996, 81:227-236.
  • 6[5]Ratner B D. [J]. Makromol Chem Makromol Symp, 1988,9:163-174.
  • 7[6]Cristina AG.[J]. Science, 1988,237:1588-1595.
  • 8[7]Zeng H, Lacefield W R. [J]. Biomaterials, 2000, 21: 23-30.
  • 9[8]Polzonetti G, Iucci G, Frontini A,et al. [J]. Biomaterials, 2000,21:1531-1539.
  • 10[9]Milosev I, Metikos-Hukovic M, Strehblow H H. [J]. Biomaterials,2000,21:2103-2113.

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