| Literature DB >> 29222467 |
Yanhui Chen1, Fei Xue2, Shengcheng Mao3, Haibo Long1, Bin Zhang1, Qingsong Deng1, Bin Chen1, Yinong Liu4, Pierce Maguire5, Hongzhou Zhang5, Xiaodong Han6, Qiang Feng2.
Abstract
Using state-of-the-art atomic scale super energy dispersive X-ray spectroscopy and high angle annular dark field imaging this study reveals the elemental partitioning preference between the γ' and γ phases in a Co-Al-W-Ti-Ta superalloy and the site preference of its alloying elements in the ordered L12 γ' phase. A semi-quantitative analysis of atomic column compositions in the ordered L12 γ' structure is provided. Co atoms were found to occupy the {1/2, 1/2, 0} face-center positions whereas Al, W, Ti and Ta atoms prefer to occupy the {0, 0, 0} cube corner positions in the L12 γ phase. These findings agree well with predictions from first principles simulations in the literature.Entities:
Year: 2017 PMID: 29222467 PMCID: PMC5722911 DOI: 10.1038/s41598-017-17456-1
Source DB: PubMed Journal: Sci Rep ISSN: 2045-2322 Impact factor: 4.379
Figure 1Composition analysis of the γ′ and γ phases. (a) HAADF image of the microstructure of the Co-7Al-8W-4Ti-1Ta single crystal alloy after ageing treatment. (b) High resolution HAADF image of a region across a γ/γ′ boundary. (c) FFT pattern of the γ phase region. (d) FFT pattern of the γ′ region. (e) Concentrations of Co, Al, W, Ta and Ti in the γ and γ′ phases. (f) Element partitioning coefficients Kγ′/γ of the alloying elements.
Figure 2Structure of the γ′-Co3(Al, W) phase in the Co-7Al-8W-4Ti-1Ta alloy. (a) Atomic model of L12 structure. (b) HAADF image of a region containing both γ′ and γ phases. (c) HAADF image intensity profile along line I.
Figure 3Atomic scale elemental mapping and quantification of the γ′ phase in the Co-Al-W-Ti-Ta alloy. (a–e) High resolution HAADF imaging and elemental mapping. (g) Elemental contents of atomic columns at sites Aa, Ab and site B. (h) Element partitioning coefficients KB/Aa and KB/Ab for different elements.