J. Mater. Sci. Technol. ›› 2026, Vol. 265: 85-99.DOI: 10.1016/j.jmst.2025.12.030

• Research Article • Previous Articles     Next Articles

Reactive laser processing-induced hierarchical gradient structure for enhanced wear resistance in a TiZrNbMoTa refractory high-entropy alloy

Feilong Jianga, Jiasi Luoa, Lu Yanga, Dingshan Lianga, Qian Liub, Zhairan Luob, Kangjie Chua, Zongyuan Lia, Shuai Wangb, Fuzeng Rena,*   

  1. aDepartment of Materials Science and Engineering, Southern University of Science and Technology, Shenzhen 518055, China;
    bDepartment of Mechanical and Energy Engineering, Southern University of Science and Technology, Shenzhen 518055, China
  • Received:2025-09-01 Revised:2025-12-17 Accepted:2025-12-17 Published:2026-09-10 Online:2025-12-24
  • Contact: * E-mail address: renfz@sustech.edu.cn (F. Ren).

Abstract: Refractory high-entropy alloys (RHEAs) possess exceptional strength and thermal stability, yet their limited wear resistance under tribological stress constrains broader applications. Here, we demonstrate a reactive atmosphere-assisted laser surface treatment (RA-LST) that generates a hierarchical gradient structure in a TiZrNbMoTa RHEA, yielding a dramatic enhancement in wear performance. Cross-sectional analysis reveals the formation of a ∼25 μm-thick gradient layer, where the coarse-grained, single-phase body-centered cubic (BCC) matrix transforms into a hierarchical architecture comprising: (i) a TiN-rich surface layer, (ii) stalactite-like (Zr, N)-enriched hexagonal close-packed domains interwoven with NbMoTa-rich BCC regions, and (iii) fine (Zr, N)-rich cellular networks within the BCC interior. This gradient microstructure elevates surface hardness from ∼5.8 to ∼10.4 GPa and accommodates frictional stresses through staged deformation pathways. Moreover, a self-adaptive tribolayer emerges dynamically during sliding, promoting stress dissipation while suppressing crack initiation and propagation. Consequently, the wear rate at room temperature is reduced significantly, from 1.23 × 10-4 to 8.95 × 10-6 mm3/(N m). These findings establish RA-LST as a versatile strategy to design hierarchical gradient structures that impart superior wear resistance to refractory alloys.

Key words: Refractory high-entropy alloy, Laser surface treatment, Gradient structure, Cellular structure, Sliding wear