Ke Wu, Xinge Zhang, W. Q. WANG, Faming Shen, Xin Zheng, Chunbai Liu, Jingwei Liang, Xudong Liang, Z. W. Zhang
• The La element was incorporated by a redox reaction of La 2 O 3 and Mg. • The strength-ductility synergy of the alloys was further enhanced. • The β 1 phases precipitated at the γ 1 /Mg interfaces. • Dislocation cutting and bypass mechanisms were observed simultaneously. The application of the Mg-RE alloys in the aerospace field is often limited by their strength-ductility trade-off. In this study, the effect of La 2 O 3 with different mass percentages on the microstructure and mechanical properties of the wire arc directed energy deposition (WA-DED) manufactured Mg-Nd-Zn-Zr alloys was investigated. Among 4%, 8%, and 12% La 2 O 3 specimens (the mass percentage of La 2 O 3 in the La 2 O 3 -alcohol solution), the 8% La 2 O 3 specimens produced a refined, equiaxed grain structure and the best strength-ductility synergy. At room temperature, the 8% La 2 O 3 specimens exhibited excellent strength-ductility synergy, and the UTS, YS, and EL of the as-deposited (AD) specimens were 243.38 MPa, 141.81 MPa, and 22.15%, while the T6 heat-treated (T6) specimens achieved 334.71 MPa, 222.08 MPa, and 19.36%, respectively. Compared to the room-temperature mechanical properties, the T6 heat-treated 8% La 2 O 3 samples at 250 °C maintain 66.21% in tensile strength, and the elongation increased by 4.81%. The enhanced strength-ductility synergy was achieved by incorporating the La elements during the WA-DED process, and the incorporation of La elements depended on a redox reaction: 3Mg+La 2 O 3 →2La+3MgO. Notably, the β 1 phases (segregated Nd and La) were observed at γ 1 /Mg interfaces, underpinning a composite strengthening mechanism of the dislocation cutting mechanism and the dislocation bypass mechanism. These results provide a simple in-situ rare-earth reinforcement route to mitigate the strength-ductility trade-off in the Mg-RE alloys.