Minimal Al promotes dual-superlattice precipitates in Ni2.1CoCrFeTa0.2 high entropy alloy with excellent tensile properties

Rongtian Cao, Jianlin Lu, Zhongsheng Yang, Songyu Wang, Lei Wang, Junjie Li, Zhijun Wang, Jincheng Wang, Feng He

Research output: Contribution to journalArticlepeer-review

Abstract

L12 and D022 superlattices have shown excellent strengthening effects and good thermal stability in high entropy alloys (HEA). Cooperating these two precipitates in one alloy has been proved promising in enhancing the comprehensive properties. However, design of the dual-superlattice precipitates in HEAs is still challenging due to unexplored interactions between the L12 and D022 phases during thermal aging. Here, we showed that addition of minimal L12-forming Al (0.5 at. %) led to L12-D022 dual superlattice precipitates in Ni2.1CoCrFeTa0.2. Our results showed that as the content of Al increases from 0 to only 1 at. %, the dominant precipitates in Ni2.1CoCrFeTa0.2 changed from single D022 phase to L12-D022 dual phases, and finally single L12 phase. Samples were annealed at different temperatures ranging from 650 °C to 750 °C. When the temperature is higher than 700 °C, D022 phase become unstable, the dual-superlattice structure will be disrupted. Superior tensile strength of 1550 MPa and good fracture elongation of 16 % are achieved by aging the (Ni2.1CoCrFeTa0.2)99.5Al0.5 HEA at 700 °C for 84 h. These insights provide guidance for the design of precipitation-hardened alloys with better mechanical properties.

Original languageEnglish
Article number108888
JournalIntermetallics
Volume185
DOIs
StatePublished - Oct 2025

Keywords

  • Dual-superlattice
  • High entropy alloy
  • Precipitation strengthening

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