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Electrophoretic deposition of carbon nanotubes and bioactive glass particles for bioactive composite coatings

机译:电泳沉积碳纳米管和生物活性玻璃颗粒用于生物活性复合涂料

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摘要

The production of bioactive coatings consisting of 45S5 Bioglass~R and mutli-walled carbon nanotubes (CNTs) by electrophoretic deposition (EPD) was investigated. In addition to pure Bioglass~R coatings, the co-deposition and sequential deposition of Bioglass~R particles (size <5 mu m) and CNTs on stainless steel substrates were carried out in order to fabricate bioactive, nanostructured composite layers. The optimal experimental conditions were determined using well-dispersed suspensions by means of a trial-and-error approach by varying the relevant EPD parameters: applied voltage and deposition time. SEM images demonstrated the successful fabrication of Bioglass~R/CNT composites by revealing their morphology and topography. The co-deposition of Bioglass~R particles and CNTs resulted in homogenous and dense coatings exhibiting the presence of well-dispersed CNTs placed in-between micron-sized Bioglass~R particles. This network of high-strength CNTs embedded in the glass layer could act as reinforcing element leading to higher mechanical stability of the coatings. The coatings obtained by sequential deposition offered a two-dimensional nanostructured fibrous mesh of CNTs covering the Bioglass~R layer thus providing a controlled (ordered) nano-topographical surface. This surface nanostructure has the potential to promote the attachment and growth of osteoblast cells and to benefit the formation of bone-like nanosized hydroxyapaptite crystals in contact with body fluids.
机译:研究了由45S5 Bioglass〜R和多壁碳纳米管(CNTs)组成的生物活性涂层的电泳沉积(EPD)。除了纯Bioglass®R涂层外,还进行了Bioglass®R颗粒(尺寸<5μm)和CNT在不锈钢基材上的共沉积和顺序沉积,以制造具有生物活性的纳米结构复合层。最佳实验条件是通过反复试验,通过改变相关的EPD参数(施加电压和沉积时间),使用均匀分散的悬浮液确定的。 SEM图像通过揭示其形态和形貌证明了Bioglass〜R / CNT复合材料的成功制造。 Bioglass〜R颗粒与CNT的共沉积导致涂层均匀,致密,并表现出存在于微米级Bioglass〜R颗粒之间的分散良好的CNT。嵌入玻璃层中的这种高强度CNT网络可以作为增强元素,从而提高涂层的机械稳定性。通过顺序沉积获得的涂层提供了覆盖Bioglass_R层的CNT的二维纳米结构纤维网,从而提供了受控的(有序的)纳米形貌表面。这种表面纳米结构具有促进成骨细胞附着和生长的潜力,并有利于与体液接触的骨状纳米羟基磷灰石晶体的形成。

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