A ductility metric for refractory-based multi-principal-element alloys
Abstract
We propose a quantum-mechanical dimensionless metric, the locallattice distortion (LLD), as a reliable predictor of ductility in refractory multi-principal-element alloys (RMPEAs). The LLD metric is based on electronegativity differences in localized chemical environments and combines atomicscale displacements due to local lattice distortions with a weighted average of valenceelectron count. To evaluate the effectiveness of this metric, we examined bodycentered cubic (bcc) refractory alloys that exhibit ductiletobrittle behavior. Our findings demonstrate that localcharge behavior can be tuned via composition to enhance ductility in RMPEAs. With finitesized cell effects eliminated, the LLD metric accurately predicted the ductility of arbitrary alloys based on tensileelongation experiments. To validate further, we qualitatively evaluated the ductility of two refractory RMPEAs, i.e., NbTaMoW and MoW_{10}Ti_{2.5}, through the observation of crack formation under indentation, again showing excellent agreement with LLD predictions. A comparative study of three refractory alloys provides further insights into the electronic-structure origin of ductility in refractory RMPEAs. This proposed metric enables rapid and accurate assessment of ductility behavior in the vast RMPEA composition space.
Cite
@article{arxiv.2211.15797,
title = {A ductility metric for refractory-based multi-principal-element alloys},
author = {Prashant Singh and Brent Vela and Gaoyuan Ouyang and Nicolas Argibay and Jun Cui and Raymundo Arroyave and Duane D. Johnson},
journal= {arXiv preprint arXiv:2211.15797},
year = {2023}
}
Comments
36 pages, 12 figures, 5 Table