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Poly (34-ethylenedioxythiophene) graphene oxide composite coatings for controlling magnesium implant corrosion

机译:聚(34-乙烯二氧噻吩)氧化石墨烯复合涂层用于控制镁植入物的腐蚀

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摘要

Magnesium (Mg) is a promising biodegradable implant material because of its appropriate mechanical properties and safe degradation products. However, in vivo corrosion speed and hydrogen gas production need to be controlled for uses in biomedical applications. Here we report the development of a conducting polymer 3,4-ethylenedioxythiphene (PEDOT) and graphene oxide (GO) composite coating as a corrosion control layer. PEDOT/GO was electropolymerized on Mg samples in ethanol media. The coated Mg samples were subjected to various corrosion tests. The PEDOT/GO coating significantly reduced the rate of corrosion as evidenced by lower Mg ion concentration and pH of the corrosion media. In addition, the coating decreased the evolved hydrogen. Electrochemical analysis of the corroding samples showed more positive corrosion potential, a decreased corrosion current, and an increase in the polarization resistance. PEDOT/GO corrosion protection is attributed to three factors; an initial passive layer preventing solution ingress, buildup of negative charges in the film, and formation of corrosion protective Mg phosphate layer through redox coupling with Mg corrosion. To explore the biocompatibility of the coated implants in vitro, corrosion media from PEDOT/GO coated or uncoated Mg samples were exposed to cultured neurons where PEDOT/GO coated samples showed decreased toxicity. These results suggest that PEDOT/GO coating will be an effective treatment for controlling corrosion of Mg based medical implants.Statement of SignificanceCoating Mg substrates with a PEDOT/GO composite coating showed a significant decrease in corrosion rate. While conducting polymer coatings have been used to prevent corrosion on various metals, there has been little work on the use of these coatings for Mg. Additionally, to our knowledge, there has not been a report of the combined used of conducting polymer and GO as a corrosion control layer. Corrosion control is attributed to an initial barrier layer followed by electrochemical coupling of the PEDOT/GO coating with the substrate to facilitate the formation of a protective phosphate layer. This coupling also resulted in a decrease in hydrogen produced during corrosion, which could further improve the host tissue integration of Mg implants. This work elaborates on the potential for electroactive polymers to serve as corrosion control methods.
机译:镁(Mg)由于其适当的机械性能和安全的降解产物而成为一种有前途的可生物降解的植入物材料。然而,在生物医学应用中需要控制体内腐蚀速度和氢气产生。在这里,我们报告了作为腐蚀控制层的导电聚合物3,4-乙烯二氧噻吩(PEDOT)和氧化石墨烯(GO)复合涂层的发展。 PEDOT / GO在乙醇培养基中的Mg样品上进行电聚合。涂覆的镁样品经受各种腐蚀测试。 PEDOT / GO涂层显着降低了腐蚀速率,这可通过降低Mg离子浓度和降低腐蚀介质的pH来证明。另外,涂层减少了放出的氢。腐蚀样品的电化学分析显示出更大的正腐蚀电位,降低的腐蚀电流和极化电阻的增加。 PEDOT / GO腐蚀防护归因于三个因素:初始的钝化层可防止溶液进入,膜中形成负电荷,以及通过氧化还原与镁腐蚀形成防腐蚀磷酸镁层。为了探索涂层植入物的体外生物相容性,将PEDOT / GO涂层或未涂层的Mg样品的腐蚀介质暴露于培养的神经元,其中PEDOT / GO涂层的样品显示出降低的毒性。这些结果表明,PEDOT / GO涂层将是控制镁基医疗植入物腐蚀的有效方法。意义说明涂有PEDOT / GO复合涂层的Mg基材的腐蚀速率明显降低。尽管已经使用导电聚合物涂层来防止对各种金属的腐蚀,但是将这些涂层用于Mg的工作却很少。另外,据我们所知,还没有关于导电聚合物和GO作为防腐蚀层的组合使用的报道。腐蚀控制归因于初始的阻隔层,然后是PEDOT / GO涂层与基材的电化学偶联,以利于形成保护性磷酸盐层。这种耦合还导致腐蚀过程中产生的氢气减少,这可以进一步改善Mg植入物的宿主组织整合度。这项工作阐述了电活性聚合物作为腐蚀控制方法的潜力。

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