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纳米结构无镍奥氏体不锈钢/羟基磷灰石复合材料

Nanostructured nickel-free austenitic stainless steel/hydroxyapatite composites.

作者信息

Tulinski Maciej, Jurczyk Mieczyslaw

机构信息

Institute of Materials Science and Engineering, Poznan University of Technology, M. Sklodowska-Curie 5 Sq., 60-965 Poznan, Poland.

出版信息

J Nanosci Nanotechnol. 2012 Nov;12(11):8779-82. doi: 10.1166/jnn.2012.6832.

Abstract

In this work Ni-free austenitic stainless steels with nanostructure and their nanocomposites with hydroxyapatite are presented and characterized by means of X-ray diffraction and optical profiling. The samples were synthesized by mechanical alloying, heat treatment and nitriding of elemental microcrystalline powders with addition of hydroxyapatite (HA). In our work we wanted to introduce into stainless steel hydroxyapatite ceramics that have been intensively studied for bone repair and replacement applications. Such applications were chosen because of their high biocompatibility and ability to bond to bone. Since nickel-free austenitic stainless steels seem to have better mechanical properties, corrosion resistance and biocompatibility compared to 316L stainless steels, it is possible that composite made of this steel and HA could improve properties, as well. Mechanical alloying and nitriding are very effective technologies to improve the corrosion resistance of stainless steel. Similar process in case of nanocomposites of stainless steel with hydroxyapatite helps achieve even better mechanical properties and corrosion resistance. Hence nanocrystalline nickel-free stainless steels and nickel-free stainless steel/hydroxyapatite nanocomposites could be promising bionanomaterials for use as a hard tissue replacement implants, e.g., orthopedic implants. In such application, the surface roughness and more specifically the surface topography influences the proliferation of cells (e.g., osteoblasts).

摘要

在这项工作中,展示了具有纳米结构的无镍奥氏体不锈钢及其与羟基磷灰石的纳米复合材料,并通过X射线衍射和光学轮廓分析对其进行了表征。通过对添加羟基磷灰石(HA)的元素微晶粉末进行机械合金化、热处理和氮化来合成样品。在我们的工作中,我们希望将已被深入研究用于骨修复和替代应用的羟基磷灰石陶瓷引入不锈钢中。选择此类应用是因为它们具有高生物相容性以及与骨结合的能力。由于与316L不锈钢相比,无镍奥氏体不锈钢似乎具有更好的机械性能、耐腐蚀性和生物相容性,由这种钢和HA制成的复合材料也有可能改善性能。机械合金化和氮化是提高不锈钢耐腐蚀性的非常有效的技术。在不锈钢与羟基磷灰石的纳米复合材料的情况下,类似的工艺有助于获得更好的机械性能和耐腐蚀性。因此,纳米晶无镍不锈钢和无镍不锈钢/羟基磷灰石纳米复合材料有望成为用作硬组织替代植入物(例如骨科植入物)的生物纳米材料。在这种应用中,表面粗糙度,更具体地说是表面形貌会影响细胞(例如成骨细胞)的增殖。

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