Abstract
VCoNi medium-entropy alloy (MEA), with medium stacking fault energy (SFE), typically develops a high density of annealing twins. Yet, its room-temperature plasticity is widely viewed as being governed by full dislocation slip, with annealing twin boundaries (ATBs) regarded as Hall-Petch strengtheners akin to high-angle grain boundaries. Here, we show that, at room temperature, an unexpected 9 R phase can nucleate directly within ATBs. This response is enabled by a deliberately engineered gradient dislocation structure with depth-dependent slip-band spacing, which generates an exceptional structural gradient (∼10.4 GPa/mm) together with high residual compressive stress (∼928 MPa). These coupled factors intensify stacking-fault activity and promote dislocation–twin interactions that progressively widen ATBs. Once the boundary width reaches a critical value of ∼4 nm is reached, 9 R nuclei emerge within the widened region. The synergistic interplay of planar disordered faulting, 9 R transformation, and dislocation multiplication sustains stable work hardening, delivering an ultrahigh yield strength above 1.2 GPa while retaining >20% uniform elongation. Our findings identify annealing twins as active strain-hardening elements in MEAs and reveal 9 R-transformation engineering as a promising strengthening paradigm for medium-SFE alloys.
| Original language | English |
|---|---|
| Article number | 150592 |
| Journal | Materials Science and Engineering: A |
| Volume | 971 |
| DOIs | |
| State | Published - Sep 2026 |
| Externally published | Yes |
Keywords
- 9R phase
- Annealing twin boundaries
- Gradient dislocation structure
- Medium-entropy alloy
- Stacking faults
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