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The Role of Etching Surface Treatment of Ti6AI4V Alloys on Hydroxyapatite Coating on Substrate Surfaces by Electrophoretic Coating Method

机译:电泳涂布法对Ti6ai4V合金蚀刻表面处理对羟基磷灰石涂层的作用

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Titanium and its alloys are standard for orthopedic prosthetic devices, due to their good mechanical properties and biocompatibility. However, bioactivity on the implant surface needs to be improved to achieve an optimal osseointegration process. Metal implants are often coated by hydroxyapatite because they have a chemical composition and crystal structure similar to apatite in the human skeletal that suitable for bone reconstruction. The focus of this research is on surface treatment designed to promote better biological responses through hydroxyapatite layers. Also combining the acid etching treatment of Ti-6Al-4V and the electrophoretic coating process of the hydroxyapatite to obtain stronger mechanical interlocking interface. Hydrofluoric-Acid treatment conducted in various time. Then, coated with nanosized hydroxyapatite through electrophoretic deposition at 15 V voltage for 10 minutes. Scanning Electron Microscopy and Contour measurements were performed to show the surface topography indicating the formation of surface contours with increasing surface roughness parameters in accordance with the time of the etching process. The contours on the surface of the substrate induce the mechanical interlocking of the surface so that the results of hydroxyapatite deposition optimal at the time of etching 5 minutes
机译:由于其良好的机械性能和生物相容性,钛及其合金是矫形假肢装置的标准。然而,需要改善植入表面的生物活性以实现最佳的骨整合过程。金属植入物通常通过羟基磷灰石涂覆,因为它们具有与适合骨重建的人骨骼中的磷灰石相似的化学成分和晶体结构。该研究的重点是表面处理,旨在通过羟基磷灰石层促进更好的生物反应。同样将酸蚀刻处理与羟基磷灰石的电泳涂布方法相结合,得到更强的机械互锁界面。在各种时间进行的氢氟酸处理。然后,通过电泳沉积在15V电压下涂覆纳米化羟基磷灰石10分钟。进行扫描电子显微镜和轮廓测量以显示表面形貌,表明根据蚀刻工艺的时间增加了表面粗糙度参数的表面轮廓的形成。基板表面上的轮廓诱导表面的机械互锁,使得在蚀刻5分钟时羟基磷灰石沉积最佳结果

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