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Tribological characterization of bioactive zirconia composite layers on zirconia structures

机译:氧化锆结构中生物活性氧化锆复合层的摩擦学特化

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The aim of this paper was to evaluate the tribological performance of bioactive zirconia composite layers applied by press and sinter method on yttria-stabilized zirconia (YSZ) substrates. Two types of bioactive zirconia composite layers were tested, zirconia reinforced by 10 vol% of HAp and by 10 vol% of beta-TCP. The wear tests were carried out in Phosphate Buffered Saline (PBS) solution at 37 +/- 2 degrees C using a ball-on-plate configuration. The wear mechanisms of the samples were identified by SEM/EDS. Fracture toughness, hardness and roughness were also evaluated. Results indicated that the tribological performance was not affected by the addition of bioactive materials. The specific wear rates were within the same order of magnitude and no change in the coefficient of friction was observed among all samples. These results show that this new approach based on the use of a bioactive zirconia composite layer on zirconia substrate, is a promising solution for implants, as it is possible to maintain the high tribological properties of zirconia and in the same time to improve bond between living tissue and implant, as the HAp and beta-TCP are acting as bioactive sites.
机译:本文的目的是评估通过压榨和烧结法施用的生物活性氧化锆复合层的摩擦学性能在氧化钇稳定的氧化锆(YSZ)底物上。测试两种类型的生物活性氧化锆复合层,氧化锆加强了10体积%的HAP和10 Vol%的β-TCP。使用球形板构型,在37 +/- 2℃下以37 +/- 2℃,在磷酸盐缓冲盐水(PBS)溶液中进行磨损试验。通过SEM / EDS鉴定样品的磨损机制。还评估了裂缝韧性,硬度和粗糙度。结果表明,摩擦学性能不受添加生物活性材料的影响。具体磨损率在相同的数量级内,并且在所有样品中观察到摩擦系数的变化。这些结果表明,基于在氧化锆基底上使用生物活性氧化锆复合层的这种新方法是植入物的有希望的解决方案,因为可以保持氧化锆的高摩擦学性质,同时改善生活之间的债券组织和植入物,因为HAP和Beta-TCP充当生物活性位点。

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