» Articles » PMID: 38393198

Simultaneously Recovery of Thorium and Tungsten Through Hybrid Electrolysis-Nanofiltration Processes

Abstract

The recovery and recycling of metals that generate toxic ions in the environment is of particular importance, especially when these are tungsten and, in particular, thorium. The radioactive element thorium has unexpectedly accessible domestic applications (filaments of light bulbs and electronic tubes, welding electrodes, and working alloys containing aluminum and magnesium), which lead to its appearance in electrical and electronic waste from municipal waste management platforms. The current paper proposes the simultaneous recovery of waste containing tungsten and thorium from welding electrodes. Simultaneous recovery is achieved by applying a hybrid membrane electrolysis technology coupled with nanofiltration. An electrolysis cell with sulphonated polyether-ether-ketone membranes (sPEEK) and a nanofiltration module with chitosan-polypropylene membranes (C-PHF-M) are used to carry out the hybrid process. The analysis of welding electrodes led to a composition of W (tungsten) 89.4%; Th 7.1%; O 2.5%; and Al 1.1%. Thus, the parameters of the electrolysis process were chosen according to the speciation of the three metals suggested by the superimposed Pourbaix diagrams. At a constant potential of 20.0 V and an electrolysis current of 1.0 A, the pH is varied and the possible composition of the solution in the anodic workspace is analyzed. Favorable conditions for both electrolysis and nanofiltration were obtained at pH from 6 to 9, when the soluble tungstate ion, the aluminum hydroxide, and solid thorium dioxide were formed. Through the first nanofiltration, the tungstate ion is obtained in the permeate, and thorium dioxide and aluminum hydroxide in the concentrate. By adding a pH 13 solution over the two precipitates, the aluminum is solubilized as sodium aluminate, which will be found after the second nanofiltration in the permeate, with the thorium dioxide remaining integrally (within an error of ±0.1 ppm) on the C-PHF-M membrane.

Citing Articles

Reduction in Olfactory Discomfort in Inhabited Premises from Areas with Mofettas through Cellulosic Derivative-Polypropylene Hollow Fiber Composite Membranes.

Albu P, Pirtac A, Motelica L, Nechifor A, Man G, Grosu A Materials (Basel). 2024; 17(17).

PMID: 39274826 PMC: 11396629. DOI: 10.3390/ma17174437.

References
1.
Bardaca Urducea C, Nechifor A, Dimulescu I, Oprea O, Nechifor G, Totu E . Control of Nanostructured Polysulfone Membrane Preparation by Phase Inversion Method. Nanomaterials (Basel). 2020; 10(12). PMC: 7760602. DOI: 10.3390/nano10122349. View

2.
Pascu D, Nechifor A, Grosu V, Oprea O, Tanczos S, Man G . Hydrogen Sulphide Sequestration with Metallic Ions in Acidic Media Based on Chitosan/sEPDM/Polypropylene Composites Hollow Fiber Membranes System. Membranes (Basel). 2023; 13(3). PMC: 10057485. DOI: 10.3390/membranes13030350. View

3.
Ubaldini A, Cicconi F, Rizzo A, Salvi S, Cuzzola V, Gennerini F . Preparation and Characterization of Isostructural NaMoO and NaWO and a Study of the Composition of Their Mixed System. Molecules. 2023; 28(18). PMC: 10538176. DOI: 10.3390/molecules28186602. View

4.
Cao Y, Guo Q, Sun W, Chelnokov G . Efficient and Fast Removal of Aqueous Tungstate by an Iron-Based LDH Delaminated in L-Asparagine. Int J Environ Res Public Health. 2022; 19(12). PMC: 9223674. DOI: 10.3390/ijerph19127280. View

5.
Elbshary R, Gouda A, El Sheikh R, AlQahtani M, Hanfi M, Atia B . Recovery of W(VI) from Wolframite Ore Using New Synthetic Schiff Base Derivative. Int J Mol Sci. 2023; 24(8). PMC: 10139163. DOI: 10.3390/ijms24087423. View