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首页> 外文期刊>Advanced Materials >Biocorrosion Zoomed In: Evidence for Dealloying of Nanometric Intermetallic Particles in Magnesium Alloys
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Biocorrosion Zoomed In: Evidence for Dealloying of Nanometric Intermetallic Particles in Magnesium Alloys

机译:生物腐蚀放大:镁合金中纳米金属间化合物脱合金的证据

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摘要

Biodegradable magnesium alloys generally contain intermetallic phases on the micro- or nanoscale, which can initiate and control local corrosion processes via microgalvanic coupling. However, the experimental difficulties in characterizing active degradation on the nanoscale have so far limited the understanding of how these materials degrade in complex physiological environments. Here a quasi-in situ experiment based on transmission electron microscopy (TEM) is designed, which enables the initial corrosion attack at nanometric particles to be accessed within the first seconds of immersion. Combined with high-resolution ex situ cross-sectional TEM analysis of a well-developed corrosion-product layer, mechanistic insights into Mg-alloys' degradation on the nanoscale are provided over a large range of immersion times. Applying this methodology to lean Mg-Zn-Ca alloys and following in detail the dissolution of their nanometric Zn- and Ca-rich particles the in statu nascendi observation of intermetallic-particle dealloying is documented for magnesium alloys, where electrochemically active Ca and Mg preferentially dissolve and electropositive Zn enriches, inducing the particles' gradual ennoblement. Based on electrochemical theory, here, the concept of cathodic-polarization-induced dealloying, which controls the dynamic microstructural changes, is presented. The general prerequisites for this new dealloying mechanism to occur in multicomponent alloys and its distinction to other dealloying modes are also discussed.
机译:可生物降解的镁合金通常包含微米级或纳米级的金属间相,可以通过微电流耦合引发和控制局部腐蚀过程。然而,迄今为止,表征纳米级活性降解的实验困难限制了对这些材料如何在复杂的生理环境中降解的理解。在这里,设计了基于透射电子显微镜(TEM)的准原位实验,该实验使得能够在浸入的最初几秒钟内获得对纳米颗粒的初始腐蚀攻击。结合高度发达的腐蚀产物层的高分辨率异位横截面TEM分析,可以在较大的浸入时间范围内提供有关镁合金在纳米级降解的机理的见解。将这种方法应用于贫Mg-Zn-Ca合金,并详细描述其纳米富锌和富Ca颗粒的溶解后,镁合金中金属间颗粒脱合金的状态观察证明了这种情况,其中电化学活性的Ca和Mg优先存在溶解并带正电的Zn富集,引起颗粒逐渐的高贵化。基于电化学理论,提出了控制动态微观结构变化的阴极极化诱导脱合金的概念。还讨论了这种新的脱合金机制在多组分合金中发生的一般前提及其与其他脱合金模式的区别。

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