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Freezing solute atoms in nanograined aluminum alloys via high-density vacancies.

Authors :
Wu, Shenghua
Soreide, Hanne S.
Chen, Bin
Bian, Jianjun
Yang, Chong
Li, Chunan
Zhang, Peng
Cheng, Pengming
Zhang, Jinyu
Peng, Yong
Liu, Gang
Li, Yanjun
Roven, Hans J.
Sun, Jun
Source :
Nature Communications; 6/17/2022, Vol. 13 Issue 1, p1-11, 11p
Publication Year :
2022

Abstract

Low-temperature decomposition of supersaturated solid solution into unfavorable intergranular precipitates is a long-standing bottleneck limiting the practical applications of nanograined aluminum alloys that are prepared by severe plastic deformation. Minimizing the vacancy concentration is generally regarded as an effective approach in suppressing the decomposition process. Here we report a counterintuitive strategy to stabilize supersaturated solid solution in nanograined Al-Cu alloys via high-density vacancies in combination with Sc microalloying. By generating a two orders of magnitude higher concentration of vacancies bonded in strong (Cu, Sc, vacancy)-rich atomic complexes, a high thermal stability is achieved in an Al-Cu-Sc alloy that precipitation is nearly suppressed up to ~230 °C. The solute-vacancy complexes also enable the nanograined Al-Cu alloys with higher strength, greater strain hardening capability and ductility. These findings provide perspectives towards the great potentials of solute-vacancy interaction and the development of nanograined alloys with high stability and well-performed mechanical properties. Low-temperature decomposition and insufficient plastic deformability are bottlenecks that limit the practical applications of nanograined Al alloys. Here the authors utilize a high density vacancies in combination with Sc microalloying to stabilize nanograined Al-Cu alloys. [ABSTRACT FROM AUTHOR]

Details

Language :
English
ISSN :
20411723
Volume :
13
Issue :
1
Database :
Complementary Index
Journal :
Nature Communications
Publication Type :
Academic Journal
Accession number :
157528275
Full Text :
https://doi.org/10.1038/s41467-022-31222-6