Entropy-driven melting point depression in fcc HEAs
Author | Tanner, Kirk |
Author | Vela, Brent |
Author | Mehalic, Seth |
Author | Youssef, Khaled |
Author | Arróyave, Raymundo |
Available date | 2022-05-11T04:46:25Z |
Publication Date | 2022-02-01 |
Publication Name | Scripta Materialia |
Identifier | http://dx.doi.org/10.1016/j.scriptamat.2021.114336 |
Citation | Kirk, T., Vela, B., Mehalic, S., Youssef, K., & Arróyave, R. (2022). Entropy-driven melting point depression in fcc HEAs. Scripta Materialia, 208, 114336. |
ISSN | 13596462 |
Abstract | High Entropy Alloys (HEAs) are an increasingly dominant alloy design paradigm. The premise of entropic stabilization of single-phase alloys has motivated much of the research on HEAs. Chemical complexity may indeed help stabilize single alloy phases relative to other lower-entropy competing solid phases. Paradoxically, this complexity may de-stabilize these alloys against the liquid phase, potentially limiting the application space of HEAs at elevated temperatures. In this work, we carry out a comprehensive investigation of the phase stability in the fcc CoCrFeMnNiV-Al HEA space using a state of the art CALPHAD database. By using modern visualization techniques and statistical analysis we examine the trade-off between chemical complexity and stability against the liquid state and identify a potentially difficult to overcome barrier for development of high temperature alloys, at least within the conventional fcc HEA space. Limited experimental data seem to be consistent with this analysis. |
Language | en |
Publisher | Elsevier |
Subject | High entropy alloys Alloy design High temperature applications Melting |
Type | Article |
Volume Number | 208 |
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Materials Science & Technology [310 items ]