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Fabrication of multifunctional titanium surfaces by producing hierarchical surface patterns using laser based ablation methods

机译:通过使用基于激光的烧蚀方法产生分层的表面图案来制造多功能钛表面

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摘要

Textured implant surfaces with micrometer and sub-micrometer features can improve contact properties like cell adhesion and bacteria repellency. A critical point of these surfaces is their mechanical stability during implantation. Therefore, strategies capable to provide both biocompatibility for an improved implant healing and resistance to wear for protecting the functional surface are required. In this work, laser-based fabrication methods have been used to produce hierarchical patterns on titanium surfaces. Using Direct Laser Writing with a nanosecond pulsed laser, crater-like structures with a separation distance of 50 µm are produced on unpolished titanium surfaces. Directly on this texture, a hole-like pattern with 5 µm spatial period is generated using Direct Laser Interference Patterning with picosecond pulses. While the smaller features should reduce the bacterial adhesion, the larger geometry was designed to protect the smaller features from wear. On the multifunctional surface, the adherence of E. Coli bacteria is reduced by 30% compared to the untreated reference. In addition, wear test performed on the multiple-scale patterns demonstrated the possibility to protect the smaller features by the larger craters. Also, the influence of the laser treatment on the growth of a titanium oxide layer was evaluated using Energy Dispersive X-Ray Spectroscopy analysis.
机译:具有微米和亚微米特征的纹理化植入物表面可以改善接触特性,例如细胞粘附力和细菌排斥性。这些表面的关键点是它们在植入过程中的机械稳定性。因此,需要能够提供生物相容性以改善植入物愈合和耐磨性以保护功能性表面的策略。在这项工作中,基于激光的制造方法已用于在钛表面上产生分层图案。使用直接激光写入和纳秒级脉冲激光,在未抛光的钛表面上产生了间距为50μm的坑状结构。直接在这种纹理上,通过使用皮秒脉冲的直接激光干涉图案形成了一个5μm空间周期的孔状图案。虽然较小的特征应减少细菌粘附,但较大的几何形状旨在保护较小的特征免于磨损。与未处理的参照物相比,在多功能表面上,大肠杆菌细菌的附着力降低了30%。另外,在多尺度图案上进行的磨损测试表明,较大的陨石坑可以保护较小的特征。另外,使用能量分散X射线光谱分析法评价了激光处理对钛氧化物层的生长的影响。

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