Rare Earth Element Occurrence and Leaching Behavior in Stone Coal Based on Synchrotron-Based Elemental Analysis
Abstract
1. Introduction
2. Materials and Methods
2.1. Material
2.2. Leaching Procedure
2.3. Synchrotron Radiation μXRF Measurements
2.4. Data Processing and Correlation Analysis
3. Results and Discussion
3.1. Microscale Distribution Characteristics of V and REEs in Raw Stone Coal Samples
3.2. Microscale Distribution Characteristics of V and REEs in Leaching Residues
3.3. Comparison of Inter-Element Relationships of REEs Before and After Leaching
3.4. Conceptual Integrated Flowsheet for the Recovery of V and REEs from Stone Coal
4. Conclusions
- (1)
- In the raw stone coal samples, V generally occurred as a dispersed background signal, whereas REEs were more commonly concentrated in localized hotspots. Spatial associations between V and most REEs were weak, while stronger relationships were more often observed within specific REE subgroups.
- (2)
- Leaching altered the spatial relationships between V and REEs in a sample-dependent manner. In the GZ sample, Eu showed the closest spatial relationship with V both before and after leaching, although the corresponding correlation coefficient decreased from 0.63 to 0.34. In the PX sample, the V-La association observed in the raw sample was not retained after leaching. In the PZ sample, moderate positive correlations between V and several REEs appeared after leaching, but these REEs were still mainly retained in the residue.
- (3)
- The results do not support a general assumption of synchronous leaching of REEs with V during acid leaching of stone coal. Changes in V-REE spatial co-variation after leaching more likely reflect ore-specific redistribution behavior than universal co-transfer into solution.
- (4)
- The recovery of REEs from stone coal should be designed according to their actual post-leaching distribution tendency between the leachate and the residue after V extraction. A staged recovery strategy is more appropriate than a fixed co-recovery assumption for the comprehensive utilization of V- and REE-bearing stone coal. In practical terms, the proposed flexible flowsheet does not require frequent modification of the front-end leaching process. Instead, the downstream REE recovery route can be selected according to the actual post-leaching distribution tendency of REEs between the leachate and the residue, allowing REE recovery to be directed to the stream in which they are preferentially enriched, thereby improving process feasibility and cost effectiveness.
Author Contributions
Funding
Data Availability Statement
Acknowledgments
Conflicts of Interest
References
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| Component | GZ | PX | PZ |
|---|---|---|---|
| V | 0.13 | 0.21 | 0.12 |
| REEs | 0.0185 | 0.0283 | 0.0162 |
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Tang, H.-H.; Liao, C.-Y.; Zhang, X.-X.; Wang, L.; Guan, Q.-J.; Cao, Y.; Sun, W. Rare Earth Element Occurrence and Leaching Behavior in Stone Coal Based on Synchrotron-Based Elemental Analysis. Separations 2026, 13, 135. https://doi.org/10.3390/separations13050135
Tang H-H, Liao C-Y, Zhang X-X, Wang L, Guan Q-J, Cao Y, Sun W. Rare Earth Element Occurrence and Leaching Behavior in Stone Coal Based on Synchrotron-Based Elemental Analysis. Separations. 2026; 13(5):135. https://doi.org/10.3390/separations13050135
Chicago/Turabian StyleTang, Hong-Hu, Chuan-Yu Liao, Xiong-Xing Zhang, Li Wang, Qing-Jun Guan, Yang Cao, and Wei Sun. 2026. "Rare Earth Element Occurrence and Leaching Behavior in Stone Coal Based on Synchrotron-Based Elemental Analysis" Separations 13, no. 5: 135. https://doi.org/10.3390/separations13050135
APA StyleTang, H.-H., Liao, C.-Y., Zhang, X.-X., Wang, L., Guan, Q.-J., Cao, Y., & Sun, W. (2026). Rare Earth Element Occurrence and Leaching Behavior in Stone Coal Based on Synchrotron-Based Elemental Analysis. Separations, 13(5), 135. https://doi.org/10.3390/separations13050135

