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March 13, 2026Intermetallics5 citationsOpen Access

Creep behavior of high-entropy alloys: A critical review

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MZMingwei ZhangUGUwe GlatzelMHMartin Heilmaier

Key Points

  • The review aims to assess the high-temperature creep behavior of high-entropy alloys (HEAs) and identify future research needs.
  • Comprehensive review of existing literature on HEAs' creep behavior
  • Focused analysis on face-centered cubic (FCC) and body-centered cubic (BCC) HEAs
  • Comparison of HEA creep performance with that of conventional alloys
  • Examination of governing mechanisms influencing high-temperature deformation
  • Discussion on microstructural factors affecting creep resistance.
  • Identifies mechanistic differences in creep responses between HEAs and conventional alloys.
  • Clarifies the governing deformation mechanisms in single- and multi-phase HEAs.
  • Benchmarks HEA performance against commercial superalloys, revealing mixed results in creep resistance.
  • Outlines specific microstructural factors that control high-temperature deformation.
  • Suggests research directions for developing more creep-resistant HEAs.

Abstract

High-entropy alloys (HEAs) have been extensively investigated during the last two decades. While substantial progress has been made in understanding their phase stability, microstructure, and deformation mechanisms at room and cryogenic temperatures, the long-term creep behavior (>100 h) of HEAs at high temperatures (>0.6 T m , where T m is the melting temperature) remains relatively underexplored. This knowledge gap is critical, as many engineering applications, including those for power generation and propulsion, require materials with good creep resistance to maintain structural integrity over extended service lifetimes. This review provides a focused and critical assessment of the current understanding of high-temperature deformation and creep behavior of HEAs, with particular attention paid to face-centered cubic HEAs and body-centered cubic refractory HEAs. The underlying deformation mechanisms governing their creep response and the influence of phase stability at elevated temperatures are examined in detail. Recent studies reveal mechanistic differences between HEAs and conventional dilute alloys that do not always lead to improved creep resistance belying their initial promise. Based on these findings, we discuss the challenges in designing HEAs for high-temperature structural applications and outline future research directions that may lead to creep-resistant HEAs. • Comprehensive review of creep in FCC and BCC high-entropy alloys. • Clarifies governing creep mechanisms across single- and multi-phase HEAs. • Benchmarks HEA creep performance against commercial superalloys. • Identifies microstructural factors that control high-temperature deformation. • Outlines pathways for designing future creep-resistant HEAs.

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Cite This Study

Zhang et al. (2026) studied this question.

synapsesocial.com/papers/69b3ac3f02a1e69014ccdc81https://doi.org/10.1016/j.intermet.2026.109242
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