Nanophase identification via correlative transmission electron microscopy: A case study of galvannealed advanced high-strength steel

电镀 材料科学 透射电子显微镜 相关 电子显微镜 鉴定(生物学) 复合材料 冶金 纳米技术 法律工程学 光学 镀锌 图层(电子) 哲学 工程类 物理 生物 植物 语言学
作者
Alexey Minenkov,Aleksander Brozyniak,Heiko Groiß
出处
期刊:Materials & Design [Elsevier BV]
卷期号:251: 113696-113696 被引量:1
标识
DOI:10.1016/j.matdes.2025.113696
摘要

The unambiguous identification of nanoscaled phases is an extensively challenging task, which stretches conventional analytical methods to the limit. It holds especially true for nanophases embedded in a matrix with a similar structure and/or chemistry. This hurdle necessitates the use of mutually reinforcing characterization techniques. Here we present the power of correlative transmission electron microscopy utilizing industrial Zn-coated steel with high Si content as a suitable test specimen. Diffusion of Si from the substrate into the coating during annealing leads to the formation of Si-rich nanoprecipitates (NPs) of 30 − 50 nm in size surrounded by a Zn-Fe matrix near the steel/coating interface. Application of our characterization approach, which involves a synergy of high-resolution transmission electron microscopy (TEM) and scanning TEM energy-dispersive X-ray spectroscopy complemented by transmission Kikuchi and precession electron diffraction, allows refining NPs as D O 3 -type structured AlFe 2 Si surrounded by the Γ 1 fcc Zn-Fe intermetallic compound. Additionally, the correlation between the structural orientation of the NPs and the matrix was revealed. Considering the dimensions of the entities under study, dependable and high-quality thin TEM sample preparation is of principal importance. We addressed this via low-temperature cutting of specimens with a Xe plasma focused ion beam. • A correlative TEM approach combining HRTEM, STEM EDX, PED, and TKD is presented. • The method was applied to characterize nanoprecipitates (NPs) in a matrix of similar structure. • The NPs and matrix were identified as AlFe 2 Si D O 3 and Γ 1 fcc Zn-Fe intermetallic phases, respectively. • PED provides precise qualitative data, while TKD offers better statistics in a reasonable time.
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