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Anodized porous titanium coated with Ni-CeO2 deposits for enhancing surface toughness and wear resistance

机译:镀有Ni-CeO2的阳极氧化多孔钛涂层,可增强表面韧性和耐磨性

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In order to make large improvements of surface toughness and wear resistance for pure titanium (Ti) substrate, anodic titanium oxide (ATO) surface with nanoporous structure was coated with the Ni-CeO2 nanocomposite coatings. Regarding TiO2 barrier layer on Ti surface to inhibit its electrochemical activity, pre-treatments were successively processed with anodizing, sensitizing, activating, and then followed by electroless Ni-P film to be acted as an activated layer for electroplating Ni-CeO2 deposits. The existing Pd atoms around ATO nanopores were expected as the heterogeneous nucleation sites for supporting the growing locations of electroless Ni-P film. The innovative of interface design using porous structure was introduced for bonding pinholes to achieve a metallurgical adhesion interface between Ti substrate and surface coatings. Besides the objectives of this work were to elucidate how effects by the adding CeO2 nanoparticles on modifying microstructures and wear mechanisms of Ni-CeO2 nanocomposite coatings. Many efforts of XRD, FE-SEM, TEM and Nanoindentation tests were devoted to comparing different wear behaviors of Ni-CeO2 coatings relative to pure nickel. Results indicated that uniform-distributed Ti nanopores with an average diameter size of similar to 200 nm was achieved using the Phosphate-type anodizing solution at DC 150 V. A worn surface without fatigue cracks was observed for TAO surface coated with Ni-CeO2 deposits, showing the existing Ce-rich worn products to be acted as a solid lubricant phase for making a self-healing effect on de-lamination failures. More important, this finding will be the guidelines for Ce-rich precipitations to be expected as the strengthening phase in anodized porous of Ti, Al and Mg alloys for intensifying their surface properties. (C) 2017 Elsevier B.V. All rights reserved.
机译:为了大大提高纯钛(Ti)基材的表面韧性和耐磨性,用Ni-CeO2纳米复合涂层涂覆了具有纳米孔结构的阳极氧化钛(ATO)表面。关于钛表面的TiO2阻挡层以抑制其电化学活性,先进行阳极氧化,敏化,活化处理,然后再进行化学镀Ni-P膜作为电镀Ni-CeO2沉积的活化层。预期ATO纳米孔周围的现有Pd原子将作为异质形核位点,以支持化学镀Ni-P膜的生长位置。引入了创新的使用多孔结构的界面设计来结合小孔,以实现Ti基底和表面涂层之间的冶金粘合界面。这项工作的目的还在于阐明添加CeO2纳米粒子对Ni-CeO2纳米复合涂层的微观结构和磨损机理的影响。 XRD,FE-SEM,TEM和纳米压痕测试的许多努力致力于比较Ni-CeO2涂层相对于纯镍的不同磨损行为。结果表明,使用磷酸盐型阳极氧化溶液在DC 150 V时可获得平均直径大小近似于200 nm的均匀分布的Ti纳米孔。涂有Ni-CeO2沉积物的TAO表面观察到无疲劳裂纹的磨损表面,显示现有的富含铈的磨损产品将充当固体润滑剂相,以对分层失败产生自我修复作用。更重要的是,这一发现将成为富铈沉淀物的指南,该沉淀物有望作为增强钛,铝和镁合金阳极氧化表面质量的强化相。 (C)2017 Elsevier B.V.保留所有权利。

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