Unravelling Microstructure Selection in an Additively Manufactured Eutectic High‐Entropy Alloy

S Shengbiao Zhang C Chenyang Li (State Key Laboratory of Catalysis, Dalian Institute of Chemical Physics) S Shahryar Mooraj (Department of Mechanical and Industrial Engineering University of Massachusetts Amherst MA 01003 USA) Y Yicheng Lai (Department of Materials Science and Engineering Texas A&M University College Station TX 77843 USA) R Raj Sanjaykumar Patel (Department of Materials Science and Engineering Texas A&M University College Station TX 77843 USA) M Margaret Wu (Materials Science Division Lawrence Livermore National Laboratory Livermore CA 94550 USA) Y Yanming Zhang J Jie Ren S Shuai Guan (Department of Mechanical and Industrial Engineering University of Massachusetts Amherst MA 01003 USA) A Aurelien Perron (Materials Science Division Lawrence Livermore National Laboratory Livermore CA 94550 USA) W Wentao Yan J Joseph T. McKeown K Kelvin Y. Xie (Department of Materials Science and Engineering Texas A&M University College Station TX 77843 USA) T Thomas Voisin (Materials Science Division Lawrence Livermore National Laboratory Livermore CA 94550 USA) W Wei Chen W Wen Chen (Department of Immunology, St. Jude Children’s Research Hospital)

Abstract

Abstract High‐entropy alloys (HEAs) are promising candidates for advanced structural applications due to their excellent mechanical properties. Additive manufacturing (AM), with its rapid solidification conditions, enables the creation of unique nonequilibrium microstructures. To fully leverage the synergy between AM and HEAs, understanding how processing affects structure and properties is essential. Here, how solidification rate influences microstructure evolution and phase transformation pathway in laser additively manufactured AlCrFe 2 Ni 2 eutectic HEAs is investigated. By increasing the laser scan speed and hence the solidification rate, distinct solidification modes evolving from coupled eutectic to anomalous eutectic and eventually to single‐phase solidification are revealed. These transitions result in distinct microstructures and a wide range of mechanical properties. Thermodynamic modeling and molecular dynamics simulations reveal that low cooling rates allow for sufficient atomic diffusion and phase separation, facilitating coupled eutectic growth. In contrast, rapid cooling suppresses diffusion and destabilizes the solid–liquid interface, promoting anomalous or single‐phase solidification. This integrated experimental and computational approach provides a multiscale understanding of solidification mechanisms in HEAs and underscores how kinetic effects can over‐ride thermodynamic predictions under nonequilibrium conditions. These results demonstrate that AM can serve as a powerful tool to design HEAs with tailored microstructures and properties.

Article Details

Volume / Issue Vol. 37, Issue 44
Published November 01, 2025
ISSN 0935-9648
Publisher Unknown Publisher

Journal Info

Advanced Materials

Unknown Publisher

ISSN: 0935-9648 Physical Sciences

Authors (16)

S

Shengbiao Zhang

C

Chenyang Li

State Key Laboratory of Catalysis, Dalian Institute of Chemical Physics

S

Shahryar Mooraj

Department of Mechanical and Industrial Engineering University of Massachusetts Amherst MA 01003 USA

Y

Yicheng Lai

Department of Materials Science and Engineering Texas A&M University College Station TX 77843 USA

R

Raj Sanjaykumar Patel

Department of Materials Science and Engineering Texas A&M University College Station TX 77843 USA

M

Margaret Wu

Materials Science Division Lawrence Livermore National Laboratory Livermore CA 94550 USA

Y

Yanming Zhang

J

Jie Ren

S

Shuai Guan

Department of Mechanical and Industrial Engineering University of Massachusetts Amherst MA 01003 USA

A

Aurelien Perron

Materials Science Division Lawrence Livermore National Laboratory Livermore CA 94550 USA

W

Wentao Yan

J

Joseph T. McKeown

K

Kelvin Y. Xie

Department of Materials Science and Engineering Texas A&M University College Station TX 77843 USA

T

Thomas Voisin

Materials Science Division Lawrence Livermore National Laboratory Livermore CA 94550 USA

W

Wei Chen

W

Wen Chen

Department of Immunology, St. Jude Children’s Research Hospital