NanoSIMS Imaging and Analysis in Materials Science.

Kexue Li, Junliang Liu, Chris R M Grovenor, Katie L Moore
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引用次数: 17

Abstract

High-resolution SIMS analysis can be used to explore a wide range of problems in material science and engineering materials, especially when chemical imaging with good spatial resolution (50-100 nm) can be combined with efficient detection of light elements and precise separation of isotopes and isobaric species. Here, applications of the NanoSIMS instrument in the analysis of inorganic materials are reviewed, focusing on areas of current interest in the development of new materials and degradation mechanisms under service conditions. We have chosen examples illustrating NanoSIMS analysis of grain boundary segregation, chemical processes in cracking, and corrosion of nuclear components. An area where NanoSIMS analysis shows potential is in the localization of light elements, in particular, hydrogen and deuterium. Hydrogen embrittlement is a serious problem for industries where safety is critical, including aerospace, nuclear, and oil/gas, so it is imperative to know where in the microstructure hydrogen is located. By charging the metal with deuterium, to avoid uncertainty in the origin of the hydrogen, the microstructural features that can trap hydrogenic species, such as precipitates and grain and phase boundaries, can be determined by NanoSIMS analysis on a microstructurally relevant scale.

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纳米模拟成像与材料科学分析。
高分辨率SIMS分析可以用于探索材料科学和工程材料中的广泛问题,特别是当具有良好空间分辨率(50-100 nm)的化学成像可以与轻元素的有效检测和同位素和等压物质的精确分离相结合时。本文综述了纳米sims仪器在无机材料分析中的应用,重点介绍了新材料的开发和使用条件下的降解机制。我们选择了一些例子来说明NanoSIMS对晶界偏析、开裂中的化学过程和核部件腐蚀的分析。NanoSIMS分析显示潜力的一个领域是轻元素的定位,特别是氢和氘。对于航空航天、核能和石油/天然气等对安全至关重要的行业来说,氢脆是一个严重的问题,因此必须知道氢在微观结构中的位置。通过向金属充入氘,避免氢的来源不确定,可以通过NanoSIMS分析在微观结构相关尺度上确定可以捕获氢物质的微观结构特征,如沉淀、晶粒和相界。
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