J. Mater. Sci. Technol. ›› 2026, Vol. 260: 151-161.DOI: 10.1016/j.jmst.2025.08.073

• Research Article • Previous Articles     Next Articles

Dual inverse-gradient nanostructured BCC tungsten for synergistic strength-ductility enhancement via dislocation dynamics

Zhang Yua, Li Miaoa, Xie Fangb, Gong Xiaobob, Huang Xiaoxiaoa, Cui Xipinga,*, Zhang Taob,*, Liu Yujingc,*   

  1. aSchool of Materials Science and Engineering, Harbin Institute of Technology, Harbin 150001, China;
    bSchool of Materials Science and Engineering, Harbin Institute of Technology, Weihai 264209, China;
    cYuhua Institute of Advanced Materials, Baoji Xigong Titanium Alloy Products Co., Ltd., Baoji 721300, China
  • Received:2025-06-04 Revised:2025-08-20 Accepted:2025-08-21 Published:2026-07-20 Online:2025-10-21
  • Contact: *E-mail addresses: cuixiping@hit.edu.cn (X. Cui), taoozhang@126.com (T. Zhang), yjliu@csust.edu.cn (Y. Liu)

Abstract: Body-centered cubic (BCC) metals are frequently limited by intrinsic strength-ductility trade-off, constraining their utility in structural applications. While gradient nanostructures offer a potential solution, conventional designs suffer from thermal and mechanical instability due to surface-nanograins coarsening under operational stresses. In this study, we demonstrate an inverse-gradient nanostructural design in BCC tungsten wires, featuring dual radial gradients in grain size and nanoprecipitate dimensions. The wires exhibit exceptional mechanical performance with 6.92 GPa tensile strength and 4.2 % fracture elongation, enhanced by 20 % and 75 % compared to equiaxed nanograined (NG) wires. Furthermore, it is demonstrated that increasing the gradient scale further strengthens these synergistic effects. Atomic-scale characterization and molecular dynamics (MD) simulations reveal the enhancement mechanism of dislocation dynamics, where distinct cross-sectional dislocation distributions effectively transfer strain localization from surface to bulk. This strain-gradient-mediated dislocation dynamics establishes a microstructure-property relationship that transcends conventional strength-ductility compromise, providing a universal design strategy for engineering high-performance BCC metals with tailored stability for extreme-environment applications.

Key words: Dual inverse-gradient nanostructure, BCC tungsten, Strength-ductility enhancement, Gradient scale, Dislocation distribution