English

Order-Disorder Competitive Cooperation in Equiatomic 3d-Transition-Metal Quaternary Alloys: Phase Stability and Electronic Structure

Materials Science 2022-01-03 v2

Abstract

We use high-throughput first-principles sampling to investigate competitive factors that determine the crystal structure of high-entropy alloys (HEAs) and the energetics dependence of the stable phase on the atomic configuration of fully ordered L12_2, D022_{22}, and random solid solution (RSS) phases of equiatomic quaternary alloys comprising four of the six constituent elements (Cr, Mn, Fe, Co, Ni, and Cu). Considering the configurational entropy, we demonstrate that valence electron concentration (VEC) and temperature are crucial to determine the phase stability of HEAs at finite temperatures, wherein the ordered phases are energetically more favorable than RSS phases. Some D022_{22} phases with high VEC are energetically more stable than L12_2 phases, though both phases are metastable. Further, we explore magnetic configurations to identify the origin of the enthalpy term. The calculations reveal that ordered phases comprising antiferromagnetic atoms surrounded by ferromagnetic atoms are energetically stable. The quantitative structure--property relationship is also discussed.

Keywords

Cite

@article{arxiv.2110.02587,
  title  = {Order-Disorder Competitive Cooperation in Equiatomic 3d-Transition-Metal Quaternary Alloys: Phase Stability and Electronic Structure},
  author = {Hiroshi Mizuseki and Ryoji Sahara and Kenta Hongo},
  journal= {arXiv preprint arXiv:2110.02587},
  year   = {2022}
}

Comments

10 pages with 7 figures for main text and supplementary information with 2 figures; some errors in version 1 were corrected