Exceptional enhancement of mechanical properties in high-entropy alloys via thermodynamically guided local chemical ordering

Author:

Dasari Sriswaroop1ORCID,Sharma Abhishek1ORCID,Jiang Chao2,Gwalani Bharat34,Lin Wei-Chih56ORCID,Lo Kai-Chi57ORCID,Gorsse Stéphane6ORCID,Yeh An-Chou57ORCID,Srinivasan Srivilliputhur G.1ORCID,Banerjee Rajarshi1

Affiliation:

1. Department of Materials Science & Engineering, University of North Texas, Denton, TX 76207

2. Computational Mechanics & Materials Department, Idaho National Laboratory, Idaho Falls, ID 83415

3. Physical and Computational Directorate, Pacific Northwest National Laboratory, Richland, WA 99354

4. Department of Materials Science and Engineering, North Carolina State University, Raleigh, NC 27695

5. Department of Materials Science and Engineering, National Tsing Hua University, Hsinchu 30013, Taiwan, R. O. C

6. University Bordeaux, CNRS, Bordeaux INP, ICMCB, UMR 5026, F-33600 Pessac, France

7. High Entropy Materials Center, National Tsing Hua University, Hsinchu 30013, Taiwan, R. O. C

Abstract

Understanding the local chemical ordering propensity in random solid solutions, and tailoring its strength, can guide the design and discovery of complex, paradigm-shifting multicomponent alloys. First, we present a simple thermodynamic framework, based solely on binary enthalpies of mixing, to select optimal alloying elements to control the nature and extent of chemical ordering in high-entropy alloys (HEAs). Next, we couple high-resolution electron microscopy, atom probe tomography, hybrid Monte-Carlo, special quasirandom structures, and density functional theory calculations to demonstrate how controlled additions of Al and Ti and subsequent annealing drive chemical ordering in nearly random equiatomic face-centered cubic CoFeNi solid solution. We establish that short-range ordered domains, the precursors of long-range ordered precipitates, inform mechanical properties. Specifically, a progressively increasing local order boosts the tensile yield strengths of the parent CoFeNi alloy by a factor of four while also substantially improving ductility, which breaks the so-called strength–ductility paradox. Finally, we validate the generality of our approach by predicting and demonstrating that controlled additions of Al, which has large negative enthalpies of mixing with the constituent elements of another nearly random body-centered cubic refractory NbTaTi HEA, also introduces chemical ordering and enhances mechanical properties.

Funder

DOD | USAF | AMC | Air Force Office of Scientific Research

Ministry of Science and Technology, Taiwan

Publisher

Proceedings of the National Academy of Sciences

Subject

Multidisciplinary

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