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In vitro corrosion resistance of a Ta2O5 nanofilm on MAO coated magnesium alloy AZ31 by atomic layer deposition

机译:通过原子层沉积法对MAO涂层镁合金AZ31上Ta2O5纳米膜的体外耐蚀性

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摘要

Micro-arc oxidation (MAO) coating with outstanding adhesion strength to Mg alloys has attracted more and more attention. However, owing to the porous structure, aggressive ions easily invaded the MAO/substrate interface through the through pores, limiting long-term corrosion resistance. Therefore, a dense and biocompatible tantalum oxide (Ta O ) nanofilm was deposited on MAO coated Mg alloy AZ31 through atomic layer deposition (ALD) technique to seal the micropores and regulate the degradation rate. Surface micrography, chemical compositions and crystallographic structure were characterized using FE-SEM, EDS, XPS and XRD. The corrosion resistance of all samples was evaluated through electrochemical and hydrogen evolution tests. Results revealed that the Ta O film mainly existed in the form of amorphousness. Moreover, uniform deposition of Ta O film and effective sealing of micropores and microcracks in MAO coating were achieved. The current density ( ) of the composite coating decreased three orders of magnitude than that of the substrate and MAO coating, improving corrosion resistance. Besides, the formation and corrosion resistance mechanisms of the composite coating were proposed.
机译:具有卓越的对镁合金附着力的微弧氧化(MAO)涂层引起了越来越多的关注。但是,由于多孔结构,侵蚀性离子很容易通过通孔侵入MAO /基材界面,从而限制了长期的耐蚀性。因此,通过原子层沉积(ALD)技术在MAO包覆的镁合金AZ31上沉积致密且生物相容的氧化钽(Ta O)纳米膜,以密封微孔并调节降解速率。使用FE-SEM,EDS,XPS和XRD对表面显微照片,化学成分和晶体结构进行了表征。通过电化学和析氢测试评估了所有样品的耐腐蚀性。结果表明,Ta O薄膜主要以非晶态形式存在。而且,实现了Ta O膜的均匀沉积以及MAO涂层中微孔和微裂纹的有效密封。复合涂层的电流密度()比基材和MAO涂层的电流密度降低了三个数量级,从而提高了耐腐蚀性。此外,还提出了复合涂层的形成和耐蚀机理。

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