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Selective etching of injection molded zirconia-toughened alumina: towards osseointegrated and antibacterial ceramic implants.

机译:注塑氧化锆增韧氧化铝的选择性蚀刻:​​朝向骨整合和抗菌陶瓷植入物。

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摘要

Due to their outstanding mechanical properties and excellent biocompatibility, zirconia-toughened alumina (ZTA) ceramics have become the gold standard in orthopedics for the fabrication of ceramic bearing components over the last decade. However, ZTA is bioinert, which hampers its implantation in direct contact with bone. Furthermore, periprosthetic joint infections are now the leading cause of failure for joint arthroplasty prostheses. To address both issues, an improved surface design is required: a controlled micro- and nano-roughness can promote osseointegration and limit bacterial adhesion whereas surface porosity allows loading and delivery of antibacterial compounds. In this work, we developed an integrated strategy aiming to provide both osseointegrative and antibacterial properties to ZTA surfaces. The micro-topography was controlled by injection molding. Meanwhile a novel process involving the selective dissolution of zirconia (selective etching) was used to produce nano-roughness and interconnected nanoporosity. Potential utilization of the porosity for loading and delivery of antibiotic molecules was demonstrated, and the impact of selective etching on mechanical properties and hydrothermal stability was shown to be limited. The combination of injection molding and selective etching thus appears promising for fabricating a new generation of ZTA components implantable in direct contact with bone.
机译:由于其出色的机械性能和出色的生物相容性,氧化锆增韧氧化铝(ZTA)陶瓷在过去十年中已成为骨科制造陶瓷轴承部件的金标准。但是,ZTA是生物惰性的,会阻碍其与骨头直接接触的植入。此外,假体周围关节感染现在是关节置换术假体失败的主要原因。为了解决这两个问题,需要改进的表面设计:受控的微米和纳米粗糙度可以促进骨整合并限制细菌粘附,而表面孔隙率则可以加载和输送抗菌化合物。在这项工作中,我们开发了一种综合策略,旨在为ZTA表面提供骨整合和抗菌特性。微观形貌通过注塑控制。同时,使用一种涉及氧化锆的选择性溶解(选择性蚀刻)的新工艺来产生纳米粗糙度和互连的纳米孔隙度。结果表明,孔隙率可用于装载和输送抗生素分子,并且选择性刻蚀对机械性能和水热稳定性的影响有限。因此,注射成型和选择性蚀刻的结合似乎有望用于制造可植入与骨骼直接接触的新一代ZTA组件。

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