本文采用碱热处理及SBF浸泡的方法在钛片上制备了仿生磷灰石涂层,并采用AES进行表面成分-深度分析,划痕法测定磷灰石涂层与基体的结合强度.结果显示,经碱热处理而制得的钛表面仿生磷灰石涂层与基体结合的界面为成分梯度界面,二者的结合要通过成分含量呈梯度变化的过渡层:Ca、P元素的含量从表面到基体逐渐下降,Ti元素的含量逐渐上升.热处理有利于提高涂层的基体结合强度,其原因是热处理使SBF中形成的磷灰石的晶核细小而均匀,使得表面涂层与基体之间的结合更为紧密.预钙化处理后形成的磷灰石涂层与金属之间仍为成分梯度界面,因此对涂层的基体结合强度影响不大.
参考文献
[1] | Suchanek W.;Yoshimura M. .Processing and properties of hydroxyapatite-based biomaterials for use as hard tissue replacement implants [Review][J].Journal of Materials Research,1998(1):94-117. |
[2] | Tengvall P;Lundstrom I .Physico-Chemical considerations of Titanium as a biomaterial[J].Clinical Materials,1992,9:115-134. |
[3] | Overgaard S .Calcium phosphate coatings for fixation of bone implants[J].Acta Orthopaedica Scandinavica,2000,71:1-74. |
[4] | Fanghui Liang;Lian Zhou;Keguang Wang .Apatite formation on orous titanium by alkali and heat treatment[J].Surface and Coatings Technology,2003,165:133-139. |
[5] | Kim HM;Miyaji F;Kokubo T .Bonding strength of bonelike apatite layer to Ti Metal substrate[J].Journal of Biomedical Materials Research Part B:Applied Biomaterials,1997(38):131-127. |
[6] | 梁芳慧,王克光,周廉.预钙化处理后的钛表面磷灰石涂层的形成[J].材料科学与工程,2002(04):541-544,533. |
[7] | Fujibayashi S;Nakamura T;Nishiguchi S;Tamura J,Uchida M,Kim HM,Kokubo Tadashi .Bioactive titaniu:effect of sodium removal on the bone-bonding ability of bioactive titanium prepared by alkali and heat treatment[J].Journal of Biomedical Materials Research,2001,56:561-570. |
上一张
下一张
上一张
下一张
计量
- 下载量()
- 访问量()
文章评分
- 您的评分:
-
10%
-
20%
-
30%
-
40%
-
50%