Physical State and Mass Transport of Metals in Liquid Cadmium Cathodes: A Review
Abstract
1. Introduction
2. Mass Transfer Processes and Mechanisms of Metals at Liquid Cd Cathodes
- (1)
- Interfacial Electrochemical Reduction: Metal ions dissolved in the molten salt electrolyte gain electrons at the cathode/electrolyte interface and are electrochemically reduced to neutral metal atoms.
- (2)
- Dissolution or Intermetallic Compound Formation: The newly formed metal atoms subsequently cross the interface and dissolve into the liquid cadmium phase, resulting in an increase in local concentration near the interface. Under certain conditions, nuclei may form and grow on the cathode surface, potentially resulting in the formation of a solid layer composed of intermetallic compounds or elemental metal.
- (3)
- Bulk diffusion and growth of deposited phases: The concentration gradient between the interface and the bulk liquid cathode serves as the primary driving force for mass transfer. Metal atoms migrate into the cathode interior through liquid-phase diffusion. Although natural or forced convection may influence macroscopic mass transfer, atomic diffusion generally remains the rate-controlling step. As the metal concentration increases and approaches the saturation solubility, intermetallic compounds may form with Cd, or the metal may precipitate as a solid phase. In some cases, a solid deposit layer may develop on the electrode surface, which can hinder further mass transport.
2.1. Dissolution and Precipitation Mechanisms of Metals in Liquid Cd
| Element | Category | Solubility in Liquid Cd (at%) | Major Intermetallic Compounds | References |
|---|---|---|---|---|
| U | Actinide | 1.11 | UCd11 | [16,36] |
| Pu | Actinide | 1.86 | PuCd11, PuCd6; | [37,38] |
| Np | Actinide | 2.20 | NpCd11, NpCd6 | [39] |
| Am | Actinide | 2.00 | AmCd6 | [40,41] |
| La | Lanthanide | 0.32 | LaCd11 | [42] |
| Ce | Lanthanide | 0.60 | CeCd11, CeCd6 | [42] |
| Nd | Lanthanide | 1.46 | NdCd11, NdCd6 | [43] |
| Sm | Lanthanide | 2.23 | SmCd11, SmCd6 | [44] |
| Zn | Post-transition | Forms a continuous liquid alloy | No fixed-stoichiometry intermetallic compounds | [45] |
| In | Post-transition | Forms a continuous liquid alloy | Described by liquid/solid solution phases | [46] |
2.1.1. Alloy Systems Exhibiting Intermetallic Compound Formation or Base-Metal Precipitation at Saturation
2.1.2. Highly Miscible Liquid Alloy Systems
2.1.3. Immiscible Systems
2.2. Mass Transport Behavior of Metals in Liquid Cd
2.3. Multicomponent Diffusion in Liquid Cd
3. Experimental Study on Mass Transport in Liquid Cd Cathode
3.1. Capillary Method
3.2. Electrochemical Methods
4. Conclusions
Author Contributions
Funding
Data Availability Statement
Conflicts of Interest
References
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| System | Diffusion Type | Temperature (K) | Diffusion Coefficient D (m2·s−1) | References |
|---|---|---|---|---|
| Cu → liquid Al | Solute diffusion | >933 K (liquid Al region) | D = 1.05 (±0.15) ×10−7 exp[−(23.8 ± 1.3)/RT] | [122] |
| Cd–Pb liquid alloy | Chemical/mutual diffusion | 628–758 K | (1.7–3.2) × 10−9 | [123] |
| Cd–Pb liquid alloy | Chemical/mutual diffusion | 623 K | (0.2–2.0) × 10−9 | [124] |
| Ag → liquid Bi | Solute diffusion | 656–872 K | D = (8.19 ± 0.79) × 10−8 exp[−(4100 ± 60)/RT] −1 | [125] |
| Ag → liquid Cd | Solute diffusion | 637–814 K | D = (5.68 ± 0.90) × 10−8 exp[−(4380 ± 90)/RT] cm2·s−1 | [125] |
| Bi → liquid Sn | Interdiffusion | 773–873 K | D = (11.56 ± 2.39) × 10−8 exp[−(2.29 ± 0.74)/RT] | [126] |
| Zn → liquid Sn | Interdiffusion | 773–873 K | D = (1.34 ± 0.83) × 10−8 exp[−(6.86 ± 3.17)/RT] | [126] |
| Ag → liquid Pb | Solute diffusion | 583.15 K | 5.80 × 10−9 | [127] |
| Sb → liquid Pb | Solute diffusion | 583.15 K | 4.60 × 10−9 | [127] |
| Au → liquid Pb | Solute diffusion | 593.15 K | 2.45 × 10−9 | [127] |
| U | Pu | La | Ce | Pr | Nd | Gd | Y | Sc | |
|---|---|---|---|---|---|---|---|---|---|
| D × 106 (cm2 s−1) for 738–743 K | 17 (738 K) | 11 (723 K) | 1.9 (723 K) | 2.9 (723 K) | 3.2 (723 K) | 2.7 (743 K) | 3.2 (723 K) | 6.8 (743 K) | 6.5 (737 K) |
| D × 106 (cm2 s−1) for 773 K | 19.9±0.7 | 14 | 2.5 | 4.8 | 3.8 | 3.4 | 3.9 | 8.2 | 7.7 |
| D × 106 (cm2 s−1) for 823 K | 23 | 16 | 3.4 | / | 4.3 | 3.9 | 4.3 | 9.3 | 8.0 |
| References | [138,139] | [139] | [137] | [140] | [137] | [137] | [137] | [137] | [137] |
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Wang, Y.; Jia, Y.; Xiao, Y.; Yao, B.; He, H. Physical State and Mass Transport of Metals in Liquid Cadmium Cathodes: A Review. Processes 2026, 14, 953. https://doi.org/10.3390/pr14060953
Wang Y, Jia Y, Xiao Y, Yao B, He H. Physical State and Mass Transport of Metals in Liquid Cadmium Cathodes: A Review. Processes. 2026; 14(6):953. https://doi.org/10.3390/pr14060953
Chicago/Turabian StyleWang, Yilin, Yanhong Jia, Yiqun Xiao, Benlin Yao, and Hui He. 2026. "Physical State and Mass Transport of Metals in Liquid Cadmium Cathodes: A Review" Processes 14, no. 6: 953. https://doi.org/10.3390/pr14060953
APA StyleWang, Y., Jia, Y., Xiao, Y., Yao, B., & He, H. (2026). Physical State and Mass Transport of Metals in Liquid Cadmium Cathodes: A Review. Processes, 14(6), 953. https://doi.org/10.3390/pr14060953

