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Electrophoretic deposition of hydroxyapatite-chitosan nanocomposite coatings in different alcohols

机译:羟基磷灰石-壳聚糖纳米复合涂层在不同醇中的电泳沉积

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摘要

Electrophoretic deposition (EPD) method was used to prepare hydroxyapatite (HA)-chitosan nanocomposite coatings on 316L stainless steel from alcoholic (methanol, ethanol and isopropanol) suspensions containing 0.5. g/L chitosan and 2, 5 and 10. g/L HA. Electrophoretic mobility of HA nanoparticles was raised by decreasing the molecular weight of alcohol, so the deposition rate of methanolic suspensions was the highest. FTIR, TG/DTA and SEM analyses were used to investigate the coatings properties. Chitosan incorporated in HA-chitosan coatings by two mechanisms: the chitosan adsorbed on the HA nanoparticles and incorporated in the coatings accompanying them, and the non-adsorbed chitosan deposited by EPD method. The chitosan incorporated in the coatings by adsorption on HA nanoparticles increases and the chitosan incorporated in it by EPD decreases with increasing the molecular weight of alcohol. The coating deposited from ethanolic suspension containing 0.5. g/L chitosan and 5. g/L HA had the highest corrosion resistance in simulated body fluid environment at 37. °C.
机译:电泳沉积(EPD)方法用于从含0.5的酒精(甲醇,乙醇和异丙醇)悬浮液在316L不锈钢上制备羟基磷灰石(HA)-壳聚糖纳米复合涂层。 g / L壳聚糖和2、5和10 g / L HA。通过降低醇的分子量可以提高HA纳米颗粒的电泳迁移率,因此甲醇悬浮液的沉积速率最高。 FTIR,TG / DTA和SEM分析被用于研究涂料的性能。壳聚糖通过两种机理掺入HA-壳聚糖涂层中:壳聚糖吸附在HA纳米颗粒上并掺入伴随它们的涂层中,以及未吸附的壳聚糖通过EPD方法沉积。随着醇分子量的增加,通过吸附在HA纳米颗粒上而掺入涂料中的壳聚糖增加,通过EPD掺入其中的壳聚糖减少。由乙醇悬浮液沉积的涂层含有0.5。 g / L的壳聚糖和5 g / L的HA在37.C的模拟体液环境中具有最高的耐腐蚀性。

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