Mg-doped ZrO2 thin film protection of AZ31 magnesium alloy against wet corrosion: A detailed study

IF 2 4区 材料科学 Q3 MATERIALS SCIENCE, COATINGS & FILMS
Sundeep Kumar Marndi , Meera Antony , Jyotirmoy Roy , Gangineni Ramesh Babu , Amirthapandian Sankarakumar , Paramasivam Thangadurai
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Abstract

Magnesium-based alloys possess attractive properties that minimize the weight of the device and improve its performance efficiency. However, their poor corrosion resistance capabilities compromise their use in many applications. One way to protect against corrosion is to apply a thin film coating on the surface. In this work, pure, 3%, 5%, 8%, and 10% Mg ion-doped zirconia (ZrO2) thin film coatings are fabricated on AZ31 Mg alloy using the electron-beam physical vapor deposition method to protect its surface from corrosion. The Mg ion doping has stabilized a tetragonal phase of ZrO2 films, compared to the monoclinic phase in the undoped film. The stabilized tetragonal phase has improved the physical properties of the films compared to the undoped film with monoclinic phase. Corrosion studies conducted using potentiodynamic polarization and impedance spectroscopy showed improved corrosion inhibition characteristics of the Mg:ZrO2 film in 3.5 wt.% NaCl electrolyte solution. The corrosion rate is reduced from 0.54 mmpy to 0.05 mmpy when coated with 5% Mg doped ZrO2 film. The corrosion current and potential are obtained to be 2.38 µA/cm2 and -1.46 V, respectively. The charge transfer resistance is high and stable in the coated samples compared to the bare substrates, where the resistance dropped heavily after the corrosion. Post-corrosion analysis using scanning electron microscopy, impedance spectroscopy, and X-ray photoelectron spectroscopy, including a quantitative analysis to discern the corrosion mechanism in the Mg:ZrO2/AZ31 heterostructure, including the presence of Na and Cl from the electrolyte. Surface features and doping quantities have greatly influenced the corrosion inhibition capabilities of the AZ31 Mg alloys.
掺镁ZrO2薄膜保护AZ31镁合金抗湿腐蚀的详细研究
镁基合金具有吸引人的特性,可以最大限度地减少设备的重量并提高其性能效率。然而,它们较差的耐腐蚀能力影响了它们在许多应用中的使用。防止腐蚀的一种方法是在表面涂上一层薄膜。本文采用电子束物理气相沉积法在AZ31镁合金表面制备了纯、3%、5%、8%和10% Mg离子掺杂的氧化锆(ZrO2)薄膜涂层,以保护其表面免受腐蚀。与未掺杂ZrO2膜的单斜相相比,Mg离子掺杂使ZrO2膜的四方相稳定。与未掺杂的单斜相相比,稳定的四方相改善了薄膜的物理性能。利用动电位极化和阻抗谱进行的腐蚀研究表明,在3.5 wt.% NaCl电解质溶液中,Mg:ZrO2膜的缓蚀特性得到了改善。当掺杂5% Mg的ZrO2膜时,腐蚀速率从0.54 mmpy降低到0.05 mmpy。腐蚀电流为2.38µA/cm2,腐蚀电位为-1.46 V。与裸基材相比,涂覆样品中的电荷转移电阻高且稳定,而裸基材的电阻在腐蚀后大幅下降。腐蚀后分析采用扫描电镜、阻抗谱和x射线光电子能谱,包括定量分析,以辨别腐蚀机理在Mg:ZrO2/AZ31异质结构,包括存在的Na和Cl的电解质。表面特征和掺杂量对AZ31镁合金的缓蚀性能有很大影响。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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来源期刊
Thin Solid Films
Thin Solid Films 工程技术-材料科学:膜
CiteScore
4.00
自引率
4.80%
发文量
381
审稿时长
7.5 months
期刊介绍: Thin Solid Films is an international journal which serves scientists and engineers working in the fields of thin-film synthesis, characterization, and applications. The field of thin films, which can be defined as the confluence of materials science, surface science, and applied physics, has become an identifiable unified discipline of scientific endeavor.
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