Critical review of magnesium-based thermochemical and electrochemical reduction routes for sustainable non-ferrous metal production

This review critically evaluates Mg-mediated routes for producing non-ferrous metals and related materials, including magnesiothermic extraction and MgCl 2 -assisted electrochemical processing. The discussion first clarifies the thermodynamic basis and metallurgical significance of Mg before analyzing the reaction pathways, kinetics, and transport limitations in direct solid-state reduction and gas-phase Mg infiltration. Mg-mediated extraction of Ti, Zr, rare earth elements, Nb, Ta, and Si is subsequently examined with emphasis on the coupling of reduction behavior with separation, purification, morphology control, and by-product management. The review also assesses engineering barriers, including Mg vapor containment, reactor corrosion, MgO separation, and the energy penalty of Mg regeneration. Electrochemical processing in molten halides is discussed with particular attention to MgCl 2 as a chlorinating agent, an electroactive melt component, and a functional additive that improves process feasibility and efficiency. Finally, future directions are outlined for closed-loop Mg metallurgy and hybrid thermochemical-electrochemical extraction, focusing on electrolysis hardware, Mg recovery, and heat integration. By linking magnesiothermic reduction with molten-halide electrochemistry, this review positions Mg as both an effective reductant and a recyclable redox carrier for low-carbon non-ferrous extractive metallurgy.

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Publication Details

Journal
Journal of Magnesium and Alloys
Published
2026-09-16
DOI
https://doi.org/10.1016/j.jma.2026.102288
Primary Topic
Molten salt chemistry and electrochemical processes
Type
article
Field-Weighted Citation Impact
0.00

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article

Critical review of magnesium-based thermochemical and electrochemical reduction routes for sustainable non-ferrous metal production

Gibeom Kim, Zhanjun Wang, Il Sohn, Xiao Yang
Journal of Magnesium and Alloys
Molten salt chemistry and electrochemical processes
article

Critical review of magnesium-based thermochemical and electrochemical reduction routes for sustainable non-ferrous metal production

Gibeom Kim, Zhanjun Wang, Il Sohn, Xiao Yang
article en

Abstract

This review critically evaluates Mg-mediated routes for producing non-ferrous metals and related materials, including magnesiothermic extraction and MgCl 2 -assisted electrochemical processing. The discussion first clarifies the thermodynamic basis and metallurgical significance of Mg before analyzing the reaction pathways, kinetics, and transport limitations in direct solid-state reduction and gas-phase Mg infiltration. Mg-mediated extraction of Ti, Zr, rare earth elements, Nb, Ta, and Si is subsequently examined with emphasis on the coupling of reduction behavior with separation, purification, morphology control, and by-product management. The review also assesses engineering barriers, including Mg vapor containment, reactor corrosion, MgO separation, and the energy penalty of Mg regeneration. Electrochemical processing in molten halides is discussed with particular attention to MgCl 2 as a chlorinating agent, an electroactive melt component, and a functional additive that improves process feasibility and efficiency. Finally, future directions are outlined for closed-loop Mg metallurgy and hybrid thermochemical-electrochemical extraction, focusing on electrolysis hardware, Mg recovery, and heat integration. By linking magnesiothermic reduction with molten-halide electrochemistry, this review positions Mg as both an effective reductant and a recyclable redox carrier for low-carbon non-ferrous extractive metallurgy.

Journal of Magnesium and AlloysVol. 26
Yonsei University (KR), Westlake University (CN), The English Linguistics Society of Korea (KR), University of Birmingham (GB)
National Research Foundation, National Research Foundation of Korea, Ministry of Science and ICT, South Korea
Responsible consumption and production
Openalex Percentile: Top 20%
Molten salt chemistry and electrochemical processes
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