TY - JOUR
T1 - Architecturing unique microstructures in high-entropy alloys via compositional complexity for superior mechanical performance
T2 - a critical review
AU - Li, Haiyang
AU - Ma, Zhaolong
AU - Cheng, Xingwang
N1 - Publisher Copyright:
© Science China Press 2026.
PY - 2026
Y1 - 2026
N2 - Departing from the initial paradigm of single-phase solid-solutions, high-entropy alloys (HEAs) have evolved to actively exploit their inherent compositional complexity as a strategic lever for microstructural design. This review synthesizes recent advances by categorizing and analyzing three distinct classes of microstructures uniquely enabled by this chemical complexity: unique solidification microstructures (eutectic, peritectic, eutectoid), multi-scale solid-state precipitates, and chemical short-range order (CSRO) configurations. Crucially, we elucidate not only the individual formation mechanisms of these microstructures but also their cross-coupling interactions across multiple length scales. Furthermore, we detail how these distinct structural features interplay with fundamental deformation mechanisms to achieve unprecedented mechanical properties. By establishing explicit composition-microstructure-property linkages, this work provides a targeted framework for leveraging chemical complexity, moving beyond empirical exploration toward the rational design of next-generation HEAs with tailored hierarchical architectures and superior performance.
AB - Departing from the initial paradigm of single-phase solid-solutions, high-entropy alloys (HEAs) have evolved to actively exploit their inherent compositional complexity as a strategic lever for microstructural design. This review synthesizes recent advances by categorizing and analyzing three distinct classes of microstructures uniquely enabled by this chemical complexity: unique solidification microstructures (eutectic, peritectic, eutectoid), multi-scale solid-state precipitates, and chemical short-range order (CSRO) configurations. Crucially, we elucidate not only the individual formation mechanisms of these microstructures but also their cross-coupling interactions across multiple length scales. Furthermore, we detail how these distinct structural features interplay with fundamental deformation mechanisms to achieve unprecedented mechanical properties. By establishing explicit composition-microstructure-property linkages, this work provides a targeted framework for leveraging chemical complexity, moving beyond empirical exploration toward the rational design of next-generation HEAs with tailored hierarchical architectures and superior performance.
KW - chemical short-range order
KW - compositional complexity
KW - high entropy alloy
KW - solid-state precipitations
KW - solidification microstructures
UR - https://www.scopus.com/pages/publications/105046748363
U2 - 10.1007/s40843-025-4174-y
DO - 10.1007/s40843-025-4174-y
M3 - Review article
AN - SCOPUS:105046748363
SN - 2095-8226
JO - Science China Materials
JF - Science China Materials
ER -