Highlights
- Review of 50+ studies finds advanced recycling methods achieving 90–95% rare earth recovery rates under laboratory conditions, but commercial scaling remains a major hurdle.
- Urban mining from retired EVs, wind turbines, and e-waste could become a significant secondary rare earth source, though infrastructure and cost barriers persist.
- China's dominance in rare earth separation and processing remains the industry's greatest strategic vulnerability, regardless of recycling advances.
- Experts warn that supply security requires integrated midstream capacity—separation, alloys, magnets, and recycling—not just new mining or recycling alone.
- Scenario-based forecasts of 50–60% recycling supply by 2040 are not commercially demonstrated outcomes and should not be mistaken for near-term projections.
A comprehensive new review (opens in a new tab) led by Samuel Chukwujindu Nwokolo of the Fort Hare Institute of Technology, University of Fort Hare, together with Theyab R. Alsenani, Paul C. Okonkwo, Edson L. Meyer, and Chinedu Christian Ahia, synthesizes more than 50 peer-reviewed studies examining the critical minerals underpinning wind turbines, electric vehicles, batteries, and solar technologies. Rather than presenting new experimental research, the authors assemble the current state of knowledge on recycling, material substitution, life-cycle assessment, and supply-chain resilience. Their central conclusion is that improved recycling technologies, better product design, and circular manufacturing could meaningfully reduce future demand for newly mined rare earths. At the same time, the review acknowledges an unavoidable reality: most promising recovery technologies remain at laboratory or pilot scale, while China's overwhelming dominance of rare earth separation and processing continues to represent the industry's greatest strategic vulnerability.
Following the Minerals
This is a systematic review, not a new experimental study. The researchers analyzed literature published between 2012 and 2024 covering mining, refining, recycling, material substitution, environmental impacts, and policy frameworks to identify emerging trends shaping renewable energy supply chains.
What the Review Found
The review highlights encouraging advances in rare earth recovery, including protein-assisted hydrometallurgy, subcritical water processing, and electrochemical separation methods that have demonstrated recovery rates approaching 90–95% under laboratory conditions. It also concludes that "urban mining"—recovering materials from retired electric vehicles, wind turbines, and electronic waste—could become an increasingly important secondary source of rare earth supply over the coming decades.
Perhaps the review's most important contribution is reinforcing that long-term supply security will depend on far more than discovering new mineral deposits. Building integrated capabilities across recycling, separation, refining, alloy production, and magnet manufacturing will ultimately determine supply-chain resilience.
Important Caveats
Rare Earth Exchanges® notes that many of the review's headline projections—including estimates that urban mining could eventually supply 50–60% of rare earth demand by 2040—are scenario-based forecasts rather than commercially demonstrated outcomes. Likewise, laboratory recovery rates should not be confused with economically viable industrial production. Major obstacles remain, including collection infrastructure, permitting, processing costs, feedstock variability, magnet qualification, and the enormous capital required to scale commercial recycling.
Why It Matters
The review reinforces a conclusion Rare Earth Exchanges has consistently advanced: the rare earth challenge is no longer simply about finding more ore. It is increasingly about building competitive midstream industrial capacity—separation, metals, alloys, magnets, recycling, and advanced manufacturing. Recycling will almost certainly become an important strategic supply source, but it is unlikely to replace primary mining for decades. Western governments and industry should therefore pursue an integrated strategy that simultaneously expands mining, processing, magnet manufacturing, and recycling rather than relying on any single solution.
Citation: Nwokolo SC, Alsenani TR, Okonkwo PC, Meyer EL, Ahia CC. Rare Earth and Non-Rare Earth Critical Minerals for the Manufacturing of Renewable Energy Technologies. Energy Reports. 2026.
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