Local structure and early-stage aggregation behavior of Mo in LiF-BeF2-UF4-ZrF4 molten salts

Redox-dependent speciation and transport of molybdenum (Mo) in actinide-bearing fluoride melts strongly influence fission-product behavior in molten-salt reactors, yet their atomistic origins remain unclear. Here, on-the-fly machine-learning molecular dynamics simulations were performed to investigate the local structure and early-stage aggregation behavior of Mo in LiF-BeF 2 -UF 4 -ZrF 4 molten salt at 923 K under systematically varied fluorine stoichiometries. For isolated Mo, increasing fluorination shortens the Mo-F distance, increases both the coordination number and the positive effective Bader charge of Mo, and significantly suppresses diffusivity. In contrast, U- and especially Zr-centered fluoride coordination environments remain relatively stable and mainly act as the multicomponent host matrix. In two-Mo systems, direct Mo-Mo bonding persists under fluorine-deficient and moderately fluorinated conditions, but disappears at high fluorination; the most compact dimer is observed under the neutral condition. In four-Mo systems, aggregation evolves from a compact U/Zr-associated cluster to a Mo-dominated compact cluster, partial pairing, and finally complete dispersion with increasing fluorination. Separate auxiliary simulations involving Nb and Te as representative noble-metal fission products were further performed to compare heteroatomic association. These results provide an atomistic basis for understanding redox-controlled fission-product speciation, early-stage aggregation, and mobility in reactor-relevant fluoride salts.

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Publication Details

Journal
Nuclear Engineering and Technology
Published
2026-09-01
DOI
https://doi.org/10.1016/j.net.2026.104688
Primary Topic
Molten salt chemistry and electrochemical processes
Type
article
Field-Weighted Citation Impact
0.00

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Local structure and early-stage aggregation behavior of Mo in LiF-BeF2-UF4-ZrF4 molten salts

Haiyang Gao, Wenguan Liu, Guifeng Zhu, Yang Zou et al.
Nuclear Engineering and Technology
Molten salt chemistry and electrochemical processes
article

Local structure and early-stage aggregation behavior of Mo in LiF-BeF2-UF4-ZrF4 molten salts

Haiyang Gao, Wenguan Liu, Guifeng Zhu, Yang Zou, Rui Yan, Linbing Jiang
article en

Abstract

Redox-dependent speciation and transport of molybdenum (Mo) in actinide-bearing fluoride melts strongly influence fission-product behavior in molten-salt reactors, yet their atomistic origins remain unclear. Here, on-the-fly machine-learning molecular dynamics simulations were performed to investigate the local structure and early-stage aggregation behavior of Mo in LiF-BeF 2 -UF 4 -ZrF 4 molten salt at 923 K under systematically varied fluorine stoichiometries. For isolated Mo, increasing fluorination shortens the Mo-F distance, increases both the coordination number and the positive effective Bader charge of Mo, and significantly suppresses diffusivity. In contrast, U- and especially Zr-centered fluoride coordination environments remain relatively stable and mainly act as the multicomponent host matrix. In two-Mo systems, direct Mo-Mo bonding persists under fluorine-deficient and moderately fluorinated conditions, but disappears at high fluorination; the most compact dimer is observed under the neutral condition. In four-Mo systems, aggregation evolves from a compact U/Zr-associated cluster to a Mo-dominated compact cluster, partial pairing, and finally complete dispersion with increasing fluorination. Separate auxiliary simulations involving Nb and Te as representative noble-metal fission products were further performed to compare heteroatomic association. These results provide an atomistic basis for understanding redox-controlled fission-product speciation, early-stage aggregation, and mobility in reactor-relevant fluoride salts.

Nuclear Engineering and Technology
Chinese Academy of Sciences (CN), Shanghai Institute of Applied Physics (CN), University of Chinese Academy of Sciences (CN)
Natural Science Foundation of Shanghai, National Natural Science Foundation of China
Openalex Percentile: Top 19%
Molten salt chemistry and electrochemical processes
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