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Evaluating Extraction of Magnesium and Lithium Compounds from Seawater Using Byproducts of Demonstration-Scale Bipolar Membrane Electrodialysis

AI Summary
  • Demonstration-scale BPMED generates acid and base streams enabling Li+ and Mg2+ extraction from natural seawater with performance comparable to commercial acid and base.
  • Mg(OH)2 can be selectively precipitated via BPMED base using laminar coflow, yielding high-purity product and potential positive net revenue, while Li+ recovery is uneconomical.
  • Post-Mg(OH)2 alkaline effluent retains alkalinity relevant to ocean alkalinity enhancement, demonstrating the feasibility of integrating mCDR with seawater mining.
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ChemSusChem. 2026 Aug 27;19(16):e70948. doi: 10.1002/cssc.70948.

ABSTRACT

Seawater is an abundant source of critical minerals, but low concentrations make mining uneconomical. Coupling seawater mining with other ocean-based processes could improve economic feasibility. Here, we investigate coupling it to bipolar membrane electrodialysis (BPMED), an emerging technology developed for ocean alkalinity enhancement (OAE)-a marine carbon dioxide removal (mCDR) pathway. BPMED generates acid and base from seawater, which are key inputs for mineral extraction. Using a demonstration-scale BPMED system, we characterized and identified mineral-rich streams within the process for Li+ and Mg2+ recovery. Li+ was extracted using an inorganic sorbent (H2TiO3) regenerated with BPMED acid, while high-purity Mg(OH)2 was selectively precipitated using BPMED base via a laminar coflow method. Our results show that Li+ and Mg2+ extraction from natural seawater using BPMED-sourced acid/base streams provide performance comparable to that obtained using commercial acid/base solutions. Preliminary cost-benefit assessments show that Mg(OH)2 extraction could generate positive net revenue, but Li+ recovery is uneconomical relative to the value of Mg2+ recovery. Importantly, the alkaline effluent post-Mg(OH)2 recovery retains alkalinity relevant to OAE under tested conditions. Our study demonstrates, for the first time, the feasibility and benefits of integrating mCDR with seawater mining to advance sustainable ocean-based climate solutions.

PMID:42584025 | DOI:10.1002/cssc.70948

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