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Paper | Open Access

Achieving wide temperature range superelasticity in additively manufactured high-entropy alloys via refined composite microstructures and partial strain glass transition

Yuting Liu1, Zhenglei Yu1 ( ), Qingquan Zhang3, Hui Shen2, Jian Zhang1, Zezhou Xu1, Bo Feng4, Cheng Wang2, Yunting Guo5 , Luquan Ren1, Shijie Hao2 ( ), Zhihui Zhang1,3 ( )
Key Laboratory of Bionic Engineering (Ministry of Education) and College of Biological and Agricultural Engineering, Jilin University, Changchun 130025, People’s Republic of China
College of New Energy and Materials, China University of Petroleum, Beijing 102249, People’s Republic of China
Institute of Structured and Architected Materials, Liaoning Academy of Materials, Shenyang 110167, People’s Republic of China
College of Materials Science and Engineering Hohai University, Changzhou 213200, People’s Republic of China
College of Mechanical and Electrical Engineering, Northeast Forestry University, Harbin 150042, People’s Republic of China
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Abstract

Superelastic alloys for critical applications in extreme environments are required to combine a wide operating temperature range, low temperature sensitivity, and high strength. Achieving this combination is challenging. Drawing from high-entropy and superelastic alloy design principles, this study utilised laser-directed energy deposition (L-DED) to fabricate TiZrHfNiCu high-entropy superelastic alloys with excellent forming quality. The intricate composition and swift solidification conditions resulted in a uniform, fine, and isotropic dendritic microstructure within this high-entropy alloy, which comprises the B2 phase, B19’ phase, and Zr2Cu-like phase. In comparison to the as-cast material, the LDED-TiZrHfNiCu material exhibits a reduced degree of component segregation and concurrently experiences strain glass transition alongside martensitic crystallisation behaviour. The alloy demonstrated recoverable superelastic strains exceeding 5%, a fracture strength over 2 GPa, and very low temperature sensitivity between 173 K and 473 K. Additionally, this method addresses the difficulties associated with machining superelastic alloys and the challenges associated with manufacturing complex geometries. This study illustrates the fabrication of TiZrHfNiCu alloy via L-DED, offering a new perspective on the preparation of high-strength, wide-temperature-range superelastic alloys and providing insights into phase-structure transformations and microstructural evolution in additively manufactured high-entropy superelastic alloys.

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International Journal of Extreme Manufacturing

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Cite this article:
Liu Y, Yu Z, Zhang Q, et al. Achieving wide temperature range superelasticity in additively manufactured high-entropy alloys via refined composite microstructures and partial strain glass transition. International Journal of Extreme Manufacturing, 2026, 8(4). https://doi.org/10.1088/2631-7990/ae57eb

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Received: 02 September 2025
Revised: 29 November 2025
Accepted: 26 March 2026
Published: 11 May 2026
© 2026 The Author(s).

Original content from this work may be used under the terms of the Creative Commons Attribution 4.0 licence. Any further distribution of this work must maintain attribution to the author(s) and the title of the work, journal citation and DOI.