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Published on: November 22, 2021
Dislocation Multijunction-Driven Plasticity in HfNbTiZr High-Entropy Alloys.
Yu-Zhen Yin1, Yaqiong An1, Jun Ding1
1State Key Laboratory for Mechanical Behavior of Materials, Xi'an Jiaotong University, Xi'an 710049, China.
Refractory high-entropy alloys (HEAs) with body-centered cubic (BCC) structures show promise for extreme environments. The HfNbTiZr alloy exhibits remarkable room-temperature ductility due to an autocatalytic dislocation multiplication mechanism.
Area of Science:
- Materials Science
- Metallurgy
- Solid Mechanics
Background:
- Refractory body-centered cubic (BCC) high-entropy alloys (HEAs) are promising for extreme environments.
- A key limitation is the lack of room-temperature ductility in BCC-HEAs.
- The HfNbTiZr alloy shows exceptional room-temperature tensile plasticity, but the underlying mechanisms are unclear.
Purpose of the Study:
- To elucidate the mechanisms responsible for the superior room-temperature ductility of the HfNbTiZr alloy.
- To understand how atomic structure influences plastic deformation in BCC-HEAs.
Main Methods:
- Integrated experimental characterization techniques.
- Atomistic simulations (e.g., molecular dynamics).
Main Results:
- Pronounced atomic size mismatch in HfNbTiZr induces significant lattice distortions.
- These distortions promote the formation of grid-like dislocation multijunctions.
- Dislocation multijunctions act as nucleation sites, enabling massive, autocatalytic dislocation multiplication.
Conclusions:
- An autocatalytic dislocation multiplication mechanism, driven by dislocation multijunctions, underpins the intrinsic plasticity of HfNbTiZr.
- This mechanism operates across a wide temperature range, overcoming inherent dislocation mobility limitations in BCC-HEAs.
- Findings offer insights into designing ductile refractory HEAs for demanding applications.
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