Local chemical fluctuation mediated ultra-sluggish martensitic transformation in high-entropy intermetallics

Yuan Wu, Fei Zhang, Fengshou Li, Yi Yang, Jiaming Zhu, Hong Hui Wu, Yao Zhang, Ruitao Qu, Zhefeng Zhang, Zhihua Nie, Yang Ren, Yandong Wang, Xiongjun Liu, Hui Wang, Zhaoping Lu*

*Corresponding author for this work

Research output: Contribution to journalArticlepeer-review

21 Citations (Scopus)

Abstract

Superelasticity associated with martensitic transformation has found a broad range of engineering applications, such as in low-temperature devices in the aerospace industry. Nevertheless, the narrow working temperature range and strong temperature sensitivity of the first-order phase transformation significantly hinder the usage of smart metallic components in many critical areas. Here, we scrutinized the phase transformation behavior and mechanical properties of multicomponent B2-structured intermetallic compounds. Strikingly, the (TiZrHfCuNi)83.3Co16.7 high-entropy intermetallics (HEIs) show superelasticity with high critical stress over 500 MPa, high fracture strength of over 2700 MPa, and small temperature sensitivity in a wide range of temperatures over 220 K. The complex sublattice occupation in these HEIs facilitates formation of nano-scaled local chemical fluctuation and then elastic confinement, which leads to an ultra-sluggish martensitic transformation. The thermal activation of the martensitic transformation was fully suppressed while the stress activation is severely retarded with an enhanced threshold stress over a wide temperature range. Moreover, the high configurational entropy also results in a small entropy change during phase transformation, consequently giving rise to the low temperature sensitivity of the superelasticity stress. Our findings may provide a new paradigm for the development of advanced superelastic alloys, and shed new insights into understanding of martensitic transformation in general.

Original languageEnglish
Pages (from-to)804-814
Number of pages11
JournalMaterials Horizons
Volume9
Issue number2
DOIs
Publication statusPublished - Feb 2022

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