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Biodegradable Conducting Polymer Coating to Mitigate Early Stage Degradation of Magnesium in Simulated Biological Fluid: An Electrochemical Mechanistic Study

机译:可生物降解的导电聚合物涂料,以减轻模拟生物流体中镁的早期降解:电化学机械研究

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摘要

The application of a biodegradable conducting polymer coating based on a polythiophene composite (PTC) to mitigate degradation of magnesium in an in vitro environment is reported. The rationale behind the study is to advance a bioactive coating to control the rapid early stage degradation of the magnesium and prevent inflammatory reactions and physiological complications, while, in the long term, the coating degrades, followed by the full degradation of the magnesium implant. The conducting polymer in this study is deposited on a bioabsorbable medical grade magnesium alloy, AZNd, through layer-by-layer deposition, and the degradation behavior in simulated biological fluid is studied electrochemically. The possibility of a synergistic effect by combining praseodymium conversion coating together with the conducting polymer coating in protecting magnesium is also examined. Results show that the highest level of corrosion mitigation is afforded by the combination of praseodymium conversion and the conducting polymer coating layers. Electrochemical models are advanced to explain the electroactivity of the conducting polymer across the film as well as at the interface with electrolyte and substrate. Based on the physical and electrochemical evidence, the barrier effect is proposed as the main protection mechanism.
机译:报道了基于聚噻吩复合物(PTC)来减轻体外环境中镁降解的可生物降解的导电聚合物涂层。研究背后的基本原理是提高生物活性涂层,以控制镁的快速早期降解,并防止炎症反应和生理并发症,同时,在长期涂层下降,然后进行镁植入的全部降解。该研究中的导电聚合物沉积在生物可吸收的医疗级镁合金,AZND,通过层层沉积,并且电化学研究了模拟生物流体中的降解行为。还研究了通过将镨转化涂层与在保护镁中的导电聚合物涂层结合在一起来实现协同效应的可能性。结果表明,镨转化率和导电聚合物涂层的组合提供了最高水平的腐蚀缓解。电化学模型先进以解释在薄膜上的导电聚合物以及电解质和基板的界面的电切断。基于物理和电化学证据,提出了屏障效应作为主要保护机制。

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