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Electrophoretic deposition of chitosan/45S5 Bioglass? composite coatings for orthopaedic applications

机译:壳聚糖/ 45S5生物玻璃的电泳沉积?骨科应用复合涂料

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This article presents experimental results on the electrophoretic deposition (EPD) of bioresorbable chitosan/45S5 Bioglass? composite coatings for orthopaedic implants based on the Taguchi design of experiments (DOE) approach. The influence of EPD parameters including Bioglass? concentration, electric voltage and deposition time on deposition yield was studied by an orthogonal Taguchi array of L18 type. Multivariate analysis of variance (MANOVA) and regression analysis based on the partial least-square method were used to identify the significant factors affecting the deposition yield and its stability during constant-voltage EPD. The coatings were characterised by high resolution scanning electron microscope (SEM), thermogravimetric analysis (TGA), and differential scanning calorimetry (DSC). It is shown that the co-deposition of polymer/Bioglass? system is very sensitive to the concentration of Bioglass? particles. The addition of Bioglass? to the chitosan suspension alters the deposition rate due to variation of pH, suspension conductivity, and zeta potential. For low Bioglass? concentrations, co-deposition of the chitosan and the bioactive glass particles occurs while at the higher concentrations massive deposition of the bioactive glass particles controls the deposition yield. The optimum condition for a high deposition rate with low standard deviation and homogeneous microstructure is achieved when an almost equal concentrations of chitosan and Bioglass? is utilized. The validity of the approach is shown by confirmation experiments at the predicted optimal condition, and the mechanism of electrophoretic co-deposition of the polymer/glass system is discussed.
机译:本文介绍了可生物吸收的壳聚糖/ 45S5生物玻璃的电泳沉积(EPD)实验结果。基于Taguchi实验设计(DOE)方法的骨科植入物复合涂层。 EPD参数包括Bioglass的影响?通过L18型正交Taguchi阵列研究了浓度,电压和沉积时间对沉积产率的影响。采用多元方差分析(MANOVA)和基于偏最小二乘方法的回归分析来确定影响恒定电压EPD期间沉积量及其稳定性的重要因素。通过高分辨率扫描电子显微镜(SEM),热重分析(TGA)和差示扫描量热法(DSC)对涂层进行表征。结果表明,聚合物/生物玻璃共沉积?系统对生物玻璃的浓度非常敏感?粒子。除了生物玻璃?由于pH值,悬浮液电导率和Zeta电位的变化,脱乙酰壳多糖悬浮液的沉积改变了沉积速率。对于低生物玻璃?在高浓度下,发生了壳聚糖和生物活性玻璃颗粒的共沉积,而在较高浓度下,生物活性玻璃颗粒的大量沉积控制了沉积产率。当壳聚糖和生物玻璃的浓度几乎相等时,可获得高沉积速率,低标准偏差和均匀微观结构的最佳条件。被利用。通过在预测的最佳条件下进行的确认实验证明了该方法的有效性,并讨论了聚合物/玻璃体系的电泳共沉积机理。

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