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Enhanced anticorrosive and antibacterial performances of silver nanoparticles/polyethyleneimine/MAO composite coating on magnesium alloys

机译:在镁合金上增强银纳米粒子/聚乙烯亚胺/ MAO复合涂层的防腐性和抗菌性能

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A multi-functional composite coating was fabricated on magnesium (Mg) AZ31 alloy through micro-arc oxidation (MAO) combined with self-assembly technology. Polyethyleneimine (PEI) as a medium was assembled on MAO coating based on the chemical bonding and electrostatic interactions. Adhered PEI successfully mediates the self-assembly of functional silver nanoparticles (Ag NPs) with a formation of Ag NPs/PEI/MAO (APM) composite coating. The morphology and microstructure of as-prepared APM coating were characterized by using of different technologies (e.g. scanning electron microscopy, energy dispersive X-ray spectroscopy, X-ray diffraction and X-ray photoelectron spectroscopy). Its corrosion behavior in simulated body fluid and the corresponding antibacterial performance againstStaphylococcus aureus(S. aureus) were also investigated. The potentiodynamic polarization results showed that the corrosion current density of APM coated AZ31 decreased more than three orders of magnitude in comparison with that of uncoated AZ31, indicating an enhanced anticorrosive ability. Electrochemical impedance spectroscopy results further revealed that the improvement of corrosion resistance was attributed to a synergistic effect of Ag NPs/PEI and MAO. The hydrogen evolution tests confirmed that APM coating provided AZ31 an excellent corrosion protection during a relatively long term. And the antibacterial research showed that APM coated AZ31 had a great antibacterial activity. This study presents a promising approach to fabricate a multi-functional composite coating on Mg alloy, which improves the anticorrosive performance of the substrate and endows it an antibacterial activity to meet a better demand in the applications.
机译:通过与自组装技术相结合,通过微弧氧化(MAO)在镁(Mg)AZ31合金上制造多功能复合涂层。基于化学键合和静电相互作用,在MaO涂层上组装聚乙烯亚胺(PEI)。粘附的PEI以Ag NPS / PEI / MAO(APM)复合涂层的形成成功地介导功能银纳米颗粒(Ag NPS)的自组装。通过使用不同的技术(例如扫描电子显微镜,能量分散X射线光谱,X射线衍射和X射线光电子能谱)的形态和微观结构的特征在于,以制备的APM涂层为特征。还研究了模拟体液中的腐蚀行为及对应的抗菌性能抵御Aureus(S.UUREUS)。电位动力学偏振结果表明,与未涂覆的AZ31相比,APM涂覆的AZ31的腐蚀电流密度降低了超过三个数量级,表明增强的抗腐蚀性能力。电化学阻抗光谱结果进一步揭示了耐腐蚀性的提高归因于Ag NPS / PEI和MAO的协同效应。氢进化试验证实,APM涂层提供了AZ31在相对长的术语期间具有出色的腐蚀保护。并且抗菌研究表明,APM涂覆的AZ31具有很大的抗菌活性。该研究提出了一种有希望的方法来制造Mg合金的多功能复合涂层,这提高了基材的防腐蚀性能,并赋予其抗菌活性以满足在应用中更好的需求。

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