J. Mater. Sci. Technol. ›› 2025, Vol. 211: 226-238.DOI: 10.1016/j.jmst.2024.06.007

• Research Article • Previous Articles     Next Articles

Multiple semi-coherent particles strengthened ultra-fine-grained Al composites for neutron shielding materials

Chen Yanga,b, Jie Huanga,b, Jing Daia,b, Kangbao Wanga,b,c, Mingliang Wanga,d,e, Zhe Chenb,e,*, Shengyi Zhongb,c,*, Xianfeng Lia,b, Haowei Wanga,b   

  1. aState Key Laboratory of Metal Matrix Composites, Shanghai Jiao Tong University, Shanghai 200240, China;
    bSchool of Materials Science and Engineering, Shanghai Jiao Tong University, Shanghai 200240, China;
    cSJTU-Paris Tech Elite Institute of Technology (SPEIT), Shanghai 200240, China;
    dAnhui Province Industrial Generic Technology Research Center for Alumics Materials, Huaibei Normal University, Huaibei 235000, China;
    eInstitute of Alumics Materials, Shanghai Jiao Tong University (Anhui), Anhui 235000, China
  • Received:2024-01-16 Revised:2024-05-30 Accepted:2024-06-01 Published:2025-03-10 Online:2024-06-22
  • Contact: * E-mail addresses: mingliang_wang@sjtu.edu.cn (M. Wang), zhe.chen@sjtu.edu.cn (Z. Chen), shengyi.zhong@sjtu.edu.cn (S. Zhong).

Abstract: Neutron shielding materials face imbalanced behaviors among shielding, strength, and ductility properties. Based on the requirement of the high property shielding particles, a superior semi-coherent τ(Al4MgGd) phase was designed and predicted by cluster expansion (CE) method using density functional theory calculations. To realize its shielding property, the Powder Metallurgy-based routines (i.e., powder fabrication, spark plasma sintering, and hot extrusion techniques) are used to fabricate 6TiB2/Al-6Mg-5Gd (wt.%) composite with dispersed refined τ phases and homogenized TiB2 distribution. The atomic structure of ternary phase τ is examined by aberration-corrected high-angle annual dark-field (HAADF) scanning transmission electron microscope (STEM) and energy dispersive X-ray spectroscopy (EDXS) STEM experiments, which is well complied with the calculated compound (Al4MgGd). In detail, the τ(Al4MgGd) phase has a semi-coherent interface both with α-Al and TiB2, which is consistent with the prediction of interface relationships. With the optimized interfaces, the TiB2 and τ phases can effectively promote recrystallization and suppress grain growth, leading to the formation of ultra-fine grain structure. Then, the composite exhibits advanced shielding properties (Macroscopic transmission cross section ∼24.1 /cm, higher than 30 %B4C/Al) and optimized synergic mechanical properties (Ultimate tensile strength ∼506 MPa, elongation ∼12.9 %), which are far higher than available Al-based neutron shielding materials. Finally, the underlying strength-ductility mechanisms are discussed. Critically, the design and optimization of shielding particle interfaces are reliable strategies for developing novel structural-functional integrated materials.

Key words: Semi-coherent particle, Metal matrix composite, Cluster expansion method, Atomic structure, Neutron shielding property, Mechanical properties