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采用剪切力安装扫描微毛细管法测定镁合金的局部腐蚀速率。

Determination of the local corrosion rate of magnesium alloys using a shear force mounted scanning microcapillary method.

作者信息

Dauphin-Ducharme Philippe, Binns W Jeffrey, Snowden Michael E, Shoesmith David W, Mauzeroll Janine

机构信息

Department of Chemistry, McGill University, 801 Sherbrooke St W., Montreal, Quebec H3A 0B8, Canada.

出版信息

Faraday Discuss. 2015;180:331-45. doi: 10.1039/c4fd00276h. Epub 2015 May 8.

Abstract

The successful development of scanning probe techniques to characterize corrosion in situ using multifunctional probes is intrinsically tied to surface topography signal decoupling from the measured electrochemical fluxes. One viable strategy is the shear force controlled scanning microcapillary method. Using this method, pulled quartz micropipettes with an aperture of 500 nm diameter were used to resolve small and large variations in topography in order to quantify the local corrosion rate of microgalvanically and galvanically corroded Mg alloys. To achieve topography monitoring of corroded surfaces, shear force feedback was employed to position the micropipette at a reproducible working height above the substrate. We present proof of concept measurements over a galvanic couple of a magnesium alloy (AE44) and mild steel along with a microgalvanically corroded ZEK100 Mg alloy, which illustrates the ability of shear force to track small (1.4 μm) and large (700 μm) topographic variations from high aspect ratio features. Furthermore, we demonstrate the robustness of the technique by acquiring topographic data for 4 mm along the magnesium-steel galvanic couple sample and a 250 × 30 μm topography map over the ZEK100 Mg alloy. All topography results were benchmarked using standard optical microscopies (profilometry and confocal laser scanning microscopy).

摘要

利用多功能探针原位表征腐蚀的扫描探针技术的成功发展,本质上与从测量的电化学通量中解耦表面形貌信号相关。一种可行的策略是剪切力控制扫描微毛细管法。使用这种方法,采用孔径为500纳米的拉制石英微量移液器来分辨形貌的小变化和大变化,以量化微电偶腐蚀和电偶腐蚀的镁合金的局部腐蚀速率。为了实现对腐蚀表面的形貌监测,采用剪切力反馈将微量移液器定位在基板上方可重复的工作高度。我们展示了在镁合金(AE44)和低碳钢的电偶以及微电偶腐蚀的ZEK100镁合金上的概念验证测量结果,这说明了剪切力跟踪高纵横比特征的小(1.4微米)和大(700微米)形貌变化的能力。此外,我们通过获取沿镁 - 钢电偶样品4毫米的形貌数据以及ZEK100镁合金上250×30微米的形貌图,证明了该技术的稳健性。所有形貌结果均使用标准光学显微镜(轮廓仪和共聚焦激光扫描显微镜)进行基准测试。

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