被动性
纳米尺度
腐蚀
材料科学
溶解
纳米结构
合金
冶金
原子探针
Atom(片上系统)
纳米技术
化学工程
计算机科学
电气工程
工程类
嵌入式系统
作者
María Jazmin Duarte,J. Klemm,Sebastian O. Klemm,Karl J. J. Mayrhofer,M. Stratmann,Sergiy Borodin,A. Romero,Milad Madinehei,Daniel Crespo,J. Serrano,Stephan Gerstl,Pyuck‐Pa Choi,Dierk Raabe,Frank Uwe Renner
出处
期刊:Science
[American Association for the Advancement of Science]
日期:2013-07-25
卷期号:341 (6144): 372-376
被引量:177
标识
DOI:10.1126/science.1230081
摘要
Ultrathin passive films effectively prevent the chemical attack of stainless steel grades in corrosive environments; their stability depends on the interplay between structure and chemistry of the constituents iron, chromium, and molybdenum (Fe-Cr-Mo). Carbon (C), and eventually boron (B), are also important constituents of steels, although in small quantities. In particular, nanoscale inhomogeneities along the surface can have an impact on material failure but are still poorly understood. Addressing a stainless-type glass-forming Fe50Cr15Mo14C15B6 alloy and using a combination of complementary high-resolution analytical techniques, we relate near-atomistic insights into increasingly inhomogeneous nanostructures with time- and element-resolved dissolution behavior. The progressive elemental partitioning on the nanoscale determines the degree of passivation. A detrimental transition from Cr-controlled passivity to Mo-controlled breakdown is dissected atom by atom, demonstrating the importance of nanoscale knowledge for understanding corrosion.
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