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Mechanical and Corrosion Properties of Laser Surface-Treated Ti13Nb13Zr Alloy with MWCNTs Coatings

机译:MWCNTS涂层激光表面处理Ti13NB13ZR合金的机械和腐蚀性能

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摘要

Titanium and its alloys is the main group of materials used in prosthetics and implantology. Despite their popularity and many advantages associated with their biocompatibility, these materials have a few significant disadvantages. These include low biologic activity—which reduces the growth of fibrous tissue and allows loosening of the prosthesis—the possibility of metallosis and related inflammation or other allergic reactions, as well as abrasion of the material during operation. Searching for the best combinations of material properties for implants in today′s world is not only associated with research on new alloys, but primarily with the modification of their surface layers. The proposed laser modification of the Ti13Nb13Zr alloy with a carbon nanotube coating is aimed at eliminating most of the problems mentioned above. The carbon coating was carried out by electrophoretic deposition (EPD) onto ground and etched substrates. This form of carbon was used due to the confirmed biocompatibility with the human body and the ability to create titanium carbides after laser treatment. The EPD-deposited carbon nanotube coating was subjected to laser treatment. Due to high power densities applied to the material during laser treatment, non-equilibrium structures were observed while improving mechanical and anti-corrosive properties. An electrophoretically deposited coating of carbon nanotubes further improved the effects of laser processing through greater strengthening, hardness or Young′s modulus similar to that required, as well as led to an increase in corrosion resistance. The advantage of the presented laser modification of the Ti13Nb13Zr alloy with a carbon coating is the lack of surface cracks, which are difficult to eliminate with traditional laser treatment of Ti alloys. All samples tested showed contact angles between 46° and 82° and thus, based on the literature reports, they have hydrophilic surfaces suitable for cell adhesion.
机译:钛及其合金是用于假肢和植入物学的主要材料组。尽管他们受欢迎程度和与其生物相容性相关的许多优势,但这些材料具有一些显着的缺点。这些包括低生物活性 - 这降低了纤维组织的生长,并允许松开假体 - 金属异常和相关炎症或其他过敏反应的可能性,以及在手术过程中磨损材料。在当今世界中寻找植入物的最佳材料性质的组合不仅与新合金的研究有关,而且主要与它们的表面层的改进有关。提出的Ti13NB13ZR合金与碳纳米管涂层的激光改性旨在消除上述大部分问题。通过电泳沉积(EPD)在地研磨和蚀刻基板上进行碳涂层。使用这种形式的碳由于具有对人体的确认的生物相容性以及在激光处理后产生碳化钛的能力。对EPD沉积的碳纳米管涂层进行激光处理。由于在激光处理期间施加到材料的高功率密度,观察到非平衡结构,同时改善机械和抗腐蚀性。电泳沉积的碳纳米管涂层进一步改善了激光加工的影响,通过与所需的更大的加强,硬度或杨氏模量相似,以及导致耐腐蚀性的增加。具有碳涂层的Ti13NB13ZR合金的所呈现的激光改性的优点是缺乏表面裂缝,这难以消除Ti合金的传统激光处理。测试的所有样品显示在46°和82°之间的接触角,因此,基于文献报告,它们具有适合于细胞粘附的亲水性表面。

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