J. Mater. Sci. Technol. ›› 2025, Vol. 206: 221-233.DOI: 10.1016/j.jmst.2024.03.064

• Research Article • Previous Articles     Next Articles

Achieving excellent strength-ductility-superelasticity combination in high-porosity NiTiNb scaffolds via high-temperature annealing

Wei Liua,b,1, Yintao Zhanga,1, Binghao Wangc,1, Shifeng Liub,*, Yan Wangb, Ling Zhangd, Liang Zhangd, Lai-Chang Zhange,*, Weijie Lua, Liqiang Wanga,*   

  1. aState Key Laboratory of Metal Matrix Composites, School of Materials Science and Engineering, Shanghai Jiao Tong University, Shanghai 200240, China;
    bSchool of Metallurgical Engineering, Xi'an University of Architecture and Technology, Xi'an 710055, China;
    cAffiliated Hospital of Youjiang Medical University for Nationalities, Guangxi Health Commission Key Laboratory of Biomedical Materials Research, Baise 533000, China;
    dInternational Joint Laboratory for Light Alloys (MOE), College of Materials Science and Engineering, Chongqing University, Chongqing 400045, China;
    eCentre for Advanced Materials and Manufacturing, School of Engineering, Edith Cowan University, 270 Joondalup Drive, Joondalup, Perth, 6027, WA, Australia
  • Received:2024-01-28 Revised:2024-03-21 Accepted:2024-03-21 Published:2025-01-20 Online:2025-01-20
  • Contact: *E-mail addresses: liushifeng66@xauat.edu.cn (S. Liu), l.zhang@ecu.edu.au (L.-C. Zhang), wang_liqiang@sjtu.edu.cn (L. Wang)
  • About author:1These authors contributed equally to this work.

Abstract: Metallic scaffolds with lightweight, low elastic modulus, and high energy-absorbing capacity are widely utilized in industrial applications but usually require post-heat treatment to enhance their comprehensive mechanical properties. However, it is unclear how to utilize the impact of β-Nb on the surrounding matrix for NiTiNb ternary alloys to achieve strength-ductility-superelasticity enhancement. Here, we prepared rhomboidal dodecahedral NiTiNb porous scaffolds with a porosity of 85.9% by additive manufacturing. Subsequently, annealing treatment was employed to drastically reduce the phase transformation temperatures and expand the thermal hysteresis. Interestingly, the 850 °C annealed scaffold exhibited exceeding double compressive strength of the as-built sample, with a remarkable improvement in ductility and superelasticity. From the microstructure perspective, high-temperature annealing caused a further eutectic reaction of the unmelted Nb particles with the NiTi matrix and the transformation of mesh-like β-Nb into dispersedly distributed spherical β-Nb particles. The microstructure evolution after deformation indicated that stress-induced martensitic transformation occurred in the matrix away from the NiTi-Nb eutectic region whereas almost no martensite formed nearby β-Nb particles. Atom probe tomography characterization revealed an element diffusion zone in several nanometers surrounding the β-Nb particle, where the substitution of Nb with Ti led to a higher Ni: Ti atomic ratio, lowering transformation temperatures. Molecular dynamics simulations illustrated that β-Nb particles can not only entangle dislocations internally, acting as reinforcements but also hinder the twin growth, contributing to strain hardening. This work elucidates the influence of β-Nb particles on the deformation mechanism of the NiTi-Nb eutectic region through in-depth atomic-scale investigation, which can provide inspiration for the improvement of comprehensive mechanical properties of NiTiNb alloys.

Key words: NiTiNb, Eutectic alloys, Mechanical properties, Metallic scaffolds, Strain hardening