TY - JOUR
T1 - Effect of fission products on tensile strength of UO2 Σ3 (111)/[11¯0] and UO2 Σ11 (11¯3)/[110] grain boundaries from first-principles study
AU - Huang, Zhiyuan
AU - Ma, Lidong
AU - Zhang, Jianbao
AU - Hua, Dongpeng
AU - Zhou, Qing
AU - Yang, Lei
AU - Kai, Ji Jung
AU - Wang, Haifeng
N1 - Publisher Copyright:
Copyright © 2024. Published by Elsevier B.V.
PY - 2026/3/10
Y1 - 2026/3/10
N2 - The segregation of solute atoms at grain boundaries (GBs) can significantly alter the cohesive properties of materials, potentially leading to embrittlement and cracking. As uranium dioxide (UO2) is the primary component of spent nuclear fuel, understanding the segregation behavior of fission products in UO2 is crucial for ensuring the safe and efficient disposal of nuclear waste. This work investigates the segregation behavior of representative fission products (La, Nd, Zr, and Mo) and their effects on the mechanical strength of UO2 Σ3 (111)/[11¯0] and Σ11 (11¯3)/[110] GBs using first-principles calculations. All these four fission products exhibit a strong preference for segregating to UO2 GB regions, where La and Nd weaken both UO2 Σ3 and Σ11 GBs, but Zr and Mo strengthen these boundaries. Despite the strengthening effects produced from Zr and Mo segregations, GB fracture remains a likely failure mode for spent nuclear fuel. These results come from the fact that the segregation of La/Nd elongates the U-O bonds at UO2 GB planes and reduces the charge density distributions within UO2 GBs, while the segregation of Zr/Mo does the opposite. These findings provide valuable insights for future theoretical and experimental investigations, and for GB engineering strategies to improve the mechanical reliability and safe disposal of oxide fuels.
AB - The segregation of solute atoms at grain boundaries (GBs) can significantly alter the cohesive properties of materials, potentially leading to embrittlement and cracking. As uranium dioxide (UO2) is the primary component of spent nuclear fuel, understanding the segregation behavior of fission products in UO2 is crucial for ensuring the safe and efficient disposal of nuclear waste. This work investigates the segregation behavior of representative fission products (La, Nd, Zr, and Mo) and their effects on the mechanical strength of UO2 Σ3 (111)/[11¯0] and Σ11 (11¯3)/[110] GBs using first-principles calculations. All these four fission products exhibit a strong preference for segregating to UO2 GB regions, where La and Nd weaken both UO2 Σ3 and Σ11 GBs, but Zr and Mo strengthen these boundaries. Despite the strengthening effects produced from Zr and Mo segregations, GB fracture remains a likely failure mode for spent nuclear fuel. These results come from the fact that the segregation of La/Nd elongates the U-O bonds at UO2 GB planes and reduces the charge density distributions within UO2 GBs, while the segregation of Zr/Mo does the opposite. These findings provide valuable insights for future theoretical and experimental investigations, and for GB engineering strategies to improve the mechanical reliability and safe disposal of oxide fuels.
KW - First-principles calculations
KW - Grain boundary
KW - Nuclear fuel
KW - Segregation
KW - Strengthening/embrittlement
UR - https://www.scopus.com/pages/publications/105030038282
U2 - 10.1016/j.commatsci.2026.114582
DO - 10.1016/j.commatsci.2026.114582
M3 - 文章
AN - SCOPUS:105030038282
SN - 0927-0256
VL - 267
JO - Computational Materials Science
JF - Computational Materials Science
M1 - 114582
ER -