TY - JOUR
T1 - Simultaneous enhancement of mechanical and thermoelectric properties via precipitation engineering in Mg3(Sb, Bi)2
AU - Xie, Peng
AU - Jiang, Lifeng
AU - Tan, Shuyue
AU - Song, Hongda
AU - Wang, Xinghui
AU - Xiao, Jingyi
AU - Kang, Huijun
AU - Chen, Zongning
AU - Guo, Enyu
AU - Wang, Jun
AU - Wang, Tongmin
N1 - Publisher Copyright:
© 2026 Acta Materialia Inc.
PY - 2026/4/1
Y1 - 2026/4/1
N2 - Precipitation strengthening is a well-established mechanism for enhancing mechanical properties in metals. As for thermoelectric materials, however, research on precipitates has primarily focused on their role in decoupling electron and phonon transport, with their potential for improving mechanical properties receiving limited attention. Herein, we systematically investigate the synergistic effects of V-rich nanoscale precipitates on both the thermoelectric and mechanical properties of Mg3(Sb, Bi)2. These precipitates promote grain growth and donate electrons to the matrix, leading to a high electrical conductivity of 6.3 × 104 S·m-1 at 323 K. Their uniform dispersion also effectively enhances phonon scattering, yielding an average figure of merit ( zT ) of 1.2 over 323-723 K. More importantly, we discover that deformation triggers dynamic precipitation in polycrystalline Mg3(Sb, Bi)2. Applied stress generates a high density of dislocations and sub-grain boundaries, which serve as fast diffusion pathways facilitating the reprecipitation of Mg-rich and Bi-rich phases, thereby simultaneously strengthening and toughening the material. Consequently, the optimized Mg3.19V0.01Sb1.5Bi0.49Te0.01 demonstrates a compressive strain of 47 % together with a compressive strength of 550 MPa. This work elucidates the dual role of nano-precipitates in governing both thermoelectric transport and mechanical reliability, offering new insights and an effective strategy for strengthening Mg3(Sb, Bi)2-based thermoelectrics.
AB - Precipitation strengthening is a well-established mechanism for enhancing mechanical properties in metals. As for thermoelectric materials, however, research on precipitates has primarily focused on their role in decoupling electron and phonon transport, with their potential for improving mechanical properties receiving limited attention. Herein, we systematically investigate the synergistic effects of V-rich nanoscale precipitates on both the thermoelectric and mechanical properties of Mg3(Sb, Bi)2. These precipitates promote grain growth and donate electrons to the matrix, leading to a high electrical conductivity of 6.3 × 104 S·m-1 at 323 K. Their uniform dispersion also effectively enhances phonon scattering, yielding an average figure of merit ( zT ) of 1.2 over 323-723 K. More importantly, we discover that deformation triggers dynamic precipitation in polycrystalline Mg3(Sb, Bi)2. Applied stress generates a high density of dislocations and sub-grain boundaries, which serve as fast diffusion pathways facilitating the reprecipitation of Mg-rich and Bi-rich phases, thereby simultaneously strengthening and toughening the material. Consequently, the optimized Mg3.19V0.01Sb1.5Bi0.49Te0.01 demonstrates a compressive strain of 47 % together with a compressive strength of 550 MPa. This work elucidates the dual role of nano-precipitates in governing both thermoelectric transport and mechanical reliability, offering new insights and an effective strategy for strengthening Mg3(Sb, Bi)2-based thermoelectrics.
KW - Dynamic precipitation
KW - Electrical performance
KW - Grain growth
KW - Mechanical properties
KW - Thermoelectric
UR - https://www.scopus.com/pages/publications/105028487716
U2 - 10.1016/j.actamat.2026.121958
DO - 10.1016/j.actamat.2026.121958
M3 - 文章
AN - SCOPUS:105028487716
SN - 1359-6454
VL - 307
JO - Acta Materialia
JF - Acta Materialia
M1 - 121958
ER -