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Showing posts sorted by relevance for query gallium recycling. Sort by date Show all posts

Metallium Gallium Recovery Project Advances US Critical Minerals Recycling

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Metallium Gallium Recovery Project Advances US Critical Minerals Recycling
Australian Metallium

Metallium gallium recovery project plans have moved forward after the Australian recycling firm completed the first phase of a US Department of Defense contract ahead of schedule. The company is developing a process to recover gallium from complex waste streams, including semiconductor scrap and electronic waste.

The project is strategically important because gallium is essential for semiconductors, military systems, optics and advanced electronics. Global supply remains highly concentrated, with China accounting for nearly all primary gallium production.

Metallium gallium recovery project development comes as China’s export controls have intensified competition for non-China supply. Higher prices and stronger defense-related demand are making recovery technologies more commercially relevant.

Flash Joule Heating Targets Low-Concentration Gallium Streams

Metallium is using its proprietary Flash Joule Heating process to recover trace gallium from steel, alloy scrap, semiconductor scrap and electronic waste. The company also aims to recover germanium and other critical minerals in later phases.

End-of-life gallium recycling remains difficult because the metal is present in very small quantities once used in finished products. This makes recovery technically challenging and usually uneconomic unless prices, feedstock access and process efficiency improve together.

Metallium can now apply for Phase II funding of up to $1mn to advance pilot-scale operations. The company expects to start full commercial operations at its Texas facility this year.

Feedstock Deals Strengthen US Recycling Scale-Up

Metallium gallium recovery project scaling is supported by both government funding and private capital. The company raised $55mn from investors in June to accelerate commercial development.

Glencore will supply 2,400 t/yr of electronic waste, becoming Metallium’s major feedstock supplier and offtake partner. This agreement gives the Texas facility a clearer route to steady input material, which is critical for recycling economics.

Metallium also signed a deal last week to supply US-based metals refiner and manufacturer Indium with several recovered metals from its US recycling operations. Together, these agreements help connect scrap collection, recovery technology and downstream advanced materials demand.

Gallium prices have risen by 175% year on year and remain supported by firm demand and limited ex-China availability. That price environment improves the case for niche recycling projects, especially where defense and semiconductor supply security are involved.

The Metalnomist Commentary

Metallium’s project shows that critical mineral security will increasingly depend on recovering trace metals from complex waste streams. Gallium recycling will not replace primary supply quickly, but it can become a strategic buffer for defense, semiconductor and optics supply chains.

Indium Corp Gallium Recovery Grant Targets US Semiconductor Materials Security

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Indium Corp Gallium Recovery Grant Targets US Semiconductor Materials Security
Indium Corp

Indium Corp gallium recovery plans have gained US government support as Washington looks to build domestic supply chains for strategic semiconductor materials. The US-based metals refiner and manufacturer will receive a $3.2mn Department of Energy grant to recover gallium from industrial residues.

Indium Corp gallium recovery will focus on converting gallium-bearing residues into high-purity gallium for semiconductors and electronics. The project is part of the DOE’s Technology for Recovery and Advanced Critical-material Extraction-Gallium initiative.

Indium Corp gallium recovery matters because gallium is a critical input for compound semiconductors, radio-frequency devices, optoelectronics, defence systems and advanced electronics. The US remains heavily exposed to foreign supply because primary gallium production is concentrated in China.

The company will begin by developing a prototype to reclaim metallic gallium at its Rome, New York facility. In a second phase, it aims to scale the process to produce at least 1 t/yr of 99.99% pure gallium.

Gallium Residues Offer a Domestic Recovery Route

The project targets gallium-bearing residues rather than new primary mine output. This is strategically important because gallium is usually recovered as a by-product from alumina and zinc processing, making standalone primary supply difficult to build quickly.

Residue recovery can create a faster domestic supply route. If Indium Corp can economically recover high-purity gallium from waste streams, it could reduce dependence on imported material and strengthen US electronics supply chains.

The planned 99.99% purity level is important for semiconductor and electronics applications. High-purity gallium is used in materials such as gallium arsenide and gallium nitride, which support power electronics, LEDs, lasers, sensors, radar and communications equipment.

The Rome facility gives the project an existing industrial base. That can shorten the path from laboratory development to pilot production, although scale-up remains the key technical challenge.

A target of at least 1 t/yr is modest compared with global demand. However, the strategic value is larger than the tonnage suggests. The project could validate a recovery process that can later be expanded or replicated across other gallium-bearing waste streams.

TRACE-Ga Reflects US Push Into Critical Materials Recycling

Indium Corp was selected as one of five recipients under the DOE’s TRACE-Ga initiative. The programme will award a total of $5.4mn across companies working on gallium recovery and extraction technologies.

Other recipients include PHNX Materials, Atlantic Alumina, Found Energy and Kunin Technologies. Their inclusion shows that the US is exploring several recovery routes, from industrial waste refining to alumina-linked by-products and emerging mineral processing technologies.

The initiative reflects a broader policy shift. Washington is trying to secure critical materials not only through mining, but also through recycling, residue recovery, by-product extraction and domestic refining.

This approach is logical for gallium. China accounts for nearly all primary gallium production, making the market highly vulnerable to export controls, licensing delays and geopolitical disruption.

Gallium’s strategic value has increased because it supports both commercial and defence technologies. It is used in semiconductors, military systems, optics and high-frequency electronics.

For US manufacturers, secure gallium supply is becoming more urgent as demand grows from data centres, 5G systems, satellites, radar, power electronics and defence platforms.

The Indium Corp project will not solve the US gallium deficit by itself. But it is an important step toward creating a domestic recovery ecosystem for a metal that is difficult to source quickly during supply shocks.

The Metalnomist Commentary

The Indium Corp grant shows that gallium security will depend on by-product recovery and recycling as much as new mining. For the US, even small domestic gallium projects matter because the current supply chain is too concentrated for a material tied to semiconductors and defence.

Sinomine to Build Copper, Gallium, and Germanium Smelters in Africa: A Strategic Move for Resource Expansion

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Sinomine

Chinese diversified mining company Sinomine Resource has announced a bold step in its global resource strategy by unveiling plans to build a copper smelter at its Kitumba mine in Zambia and a germanium/gallium recycling facility at the Tsumeb smelter in Namibia. These investments come as part of Sinomine's ongoing strategy to expand its reach in the mining sector, focusing on copper, germanium, and gallium—key strategic metals for the global market.

Sinomine’s Copper Smelter in Zambia

The first phase of Sinomine’s expansion involves a $562.9 million investment in a new copper smelter at its Kitumba mine in Zambia. The smelter will process 3.5 million tons per year of copper ore, with a production capacity of 60,000 tons per year of copper cathode. The project is set to be completed by late 2026, with a construction period of 1½ years, and will have an expected operating life of 11 years after commissioning. The smelter’s establishment aligns with Sinomine's strategy of expanding its copper resources globally, particularly in Africa, a continent rich in mineral deposits.

Sinomine took control of the Kitumba mine in March and began production in August, marking a significant milestone in its overseas copper operations. The Kitumba project complements Sinomine’s other Zambian ventures, including the commissioning of a second concentrator at the Kasisi copper and gold mine earlier in 2023. This move has significantly increased copper ore processing capacity, further bolstering Sinomine’s growing presence in Zambia.

Expansion in Namibia: Gallium and Germanium Recycling Facility

In addition to copper, Sinomine has also turned its attention to germanium and gallium, two metals that are crucial to industries such as information technology, renewable energy, and aviation. The company is investing $222 million in a multi-metal recycling facility at the Tsumeb smelter in Namibia. The facility will have an annual processing capacity of 200,000 tons and will produce 33 tons per year of zone-melting grade germanium, 11 tons per year of 99.9% industrial-grade gallium, and 10,900 tons per year of zinc. This ambitious project will be built in two phases and is expected to operate for 15 years. However, detailed launch dates are still to be disclosed.

The polymetallic slag at the Tsumeb smelter is estimated to contain substantial quantities of germanium, gallium, and other metals, including zinc and copper, making it an attractive site for advanced metal recycling and extraction. Sinomine’s investment reflects the growing global demand for germanium and gallium, both of which have seen price increases following China’s introduction of export licensing schemes in August 2023. These metals are considered critical for high-tech applications, and their strategic importance has driven companies worldwide to diversify their supply sources.

The Global Significance of Germanium and Gallium

Germanium, used extensively in industries ranging from telecommunications to clean energy, is a strategic resource that is primarily produced in China, which has been reducing its export volume. The global reserves of germanium are estimated at just 8,600 tons, according to the US Geological Survey. Gallium, which is essential for electronics and solar technology, is also in high demand. Sinomine's strategic investments in germanium and gallium facilities will position the company to capitalize on the rising global need for these critical materials, while reducing its reliance on Chinese supply chains.

Conclusion

Sinomine’s investment in copper and multi-metal recycling projects in Zambia and Namibia highlights its forward-thinking approach to securing a diverse range of valuable resources. As global demand for copper, germanium, and gallium grows, Sinomine is positioning itself as a key player in the African mining sector. With an expanding footprint across the continent, the company is set to shape the future of metal production and recycling, supporting industries from renewable energy to electronics.

Metallium Indium Offtake Deal Strengthens US Critical Metals Recycling Chain

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Metallium Indium Offtake Deal Strengthens US Critical Metals Recycling Chain
Metallium

Metallium Indium offtake deal plans will strengthen the US recycling route for critical metals used in advanced electronics, semiconductors and thin-film manufacturing. Australian metals recovery firm Metallium has signed a binding 10-year offtake agreement with US-based metals refiner and manufacturer Indium.

The Metallium Indium offtake deal covers several recovered metals, including gallium, germanium, copper, tin, indium and gold. Pricing will be formula-based, while final quantities have not yet been disclosed.

The Metallium Indium offtake deal gives Metallium a long-term commercial outlet for metals recovered from its US recycling operations. It also gives Indium access to secondary supply for materials used in solders, fluxes, thermal interface materials, sputtering targets and semiconductor-related products.

Texas Recycling Facility Targets High-Value Electronic Scrap

Metallium expects to recover metals at its recently commissioned Texas facility using flash joule heating technology. The process rapidly heats scrap mixtures in a controlled chlorine atmosphere to recover metals from synthesized LED manufacturing scrap.

The plant was first commissioned in December, with initial recovery focused on copper, tin, gold and silver from printed circuit board feedstock. Metallium later plans to establish gallium and germanium processing lines, which would move the facility deeper into critical minor metals recovery.

This matters because gallium and germanium are strategically important for semiconductors, optoelectronics, infrared systems, LEDs, solar technologies and defense-related applications. Recycling can help reduce exposure to concentrated primary supply and export-control risks.

Indium Agreement Links Recycling to Advanced Manufacturing Demand

Indium’s role gives the agreement direct industrial relevance. The company supplies materials into advanced electronics, semiconductor and thin-film markets, where high-purity and reliable metal supply are essential.

The companies are also discussing feedstock supply separately, which could deepen the partnership beyond offtake. If feedstock and product flows are aligned, the arrangement could support a more integrated recycling-to-refining model.

Metallium’s recent A$75mn capital raise from US institutional investors and earlier US Defense Logistics Agency support add strategic weight to the Texas facility. The funding shows that US critical minerals recycling is becoming a defense, technology and industrial policy priority.

The Metalnomist Commentary

The Metallium-Indium agreement shows that critical mineral security is moving into electronic scrap and advanced recycling. The key opportunity is not only recovering copper and precious metals, but building domestic capacity for gallium, germanium and indium supply chains.

Australia's MTM Plans US Gallium Recycling Plant

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Australian mining firm MTM Critical Metals is set to establish a new gallium recycling plant in the United States, with operations slated to begin next year. The plant will process 1 ton per day of gallium, extracted from electronic waste such as semiconductors and LEDs, using their proprietary Flash Joule Heating (FJH) technology.

Innovative Process and Market Impact

The FJH technology, tested at Rice University in Texas, has proven effective in recovering gallium from LED manufacturing waste. This process involves rapidly heating the waste in a controlled chlorine atmosphere, which enables the extraction of gallium in high purity by converting gallium nitride (GaN) into a more volatile form.

The global gallium market faces supply challenges due to China's export restrictions, which affect over 95% of global production and have led to rising prices. Gallium is increasingly in demand for applications including semiconductors, LEDs, solar panels, and advanced defense systems.

MTM is advancing prototype testing in Houston and is exploring partnerships for financing and offtake agreements. The technology could also be used to recover germanium, another metal with restricted exports from China. MTM's broader research includes testing on various metals and rare earth elements.

Gallium and Scandium Waste Recovery Startup Targets Critical Mineral Bottlenecks

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Gallium and Scandium Waste Recovery Startup Targets Critical Mineral Bottlenecks
Supra Elemental Recovery

Gallium and scandium waste recovery is gaining a new player in the US critical minerals market. Supra Elemental Recovery launched with $2mn to advance its reusable cartridge technology. The company aims to recover metals from industrial byproducts, mine tailings, and electronic waste. As a result, gallium and scandium waste recovery is moving closer to commercial use.

This matters because gallium and scandium remain strategically sensitive materials. Western supply has tightened after Chinese export controls squeezed access to several critical minerals. That pressure has increased across defense, aerospace, and energy-related supply chains. Therefore, US gallium supply and scandium recycling are becoming more important industrial priorities.

The company’s approach also stands out because it focuses on recovery from waste streams rather than new mining alone. Supra says its system uses a reusable sponge-like cartridge to capture target metals. That model could reduce dependence on conventional upstream supply. Consequently, gallium and scandium waste recovery may become a more practical diversification tool.

Critical Mineral Recovery Technology Moves Toward Pilot Scale

Critical mineral recovery technology is becoming more valuable as concentrated supply chains remain a strategic risk. Supra’s system is designed to recover metals from several overlooked sources, including industrial waste and mine tailings. That gives the company access to materials that already exist inside the industrial system. As a result, the business is aligned with the growing push for circular supply models.

The company is also preparing for a commercial pilot in 2026. The initial funding will support further technology development and pilot readiness. That means the project is still early stage, but it is moving beyond pure research. Therefore, critical mineral recovery technology is starting to enter a more commercial phase.

The scientific foundation adds credibility to the effort. Supra’s technology builds on federally supported research at the University of Texas at Austin. That background suggests the company is building from a stronger technical base than a typical early startup. Meanwhile, it aligns with broader US interest in domestic critical minerals innovation.

US Gallium Supply and Scandium Recycling Could Gain a New Pathway

US gallium supply could benefit if Supra proves it can recover high-purity material at meaningful scale. Gallium remains important for semiconductors, electronics, and advanced industrial uses. Scandium also matters for aerospace and other high-performance applications. Therefore, a domestic recovery pathway for both metals would carry strategic value.

The business may also extend beyond these two materials. Supra is testing recovery of cobalt, lithium, and some rare earths. That suggests the company is building a platform rather than a single-metal solution. Consequently, gallium and scandium waste recovery may be only the first step in a broader critical minerals strategy.

The wider market message is clear. Waste recovery is no longer a secondary topic in strategic materials. It is becoming a serious supply option where mining and refining remain exposed to geopolitical concentration. As a result, smaller technology firms may play a bigger role in future critical mineral resilience than their scale first suggests.

The Metalnomist Commentary

This launch matters because it focuses on one of the most overlooked parts of the critical minerals chain: recoverable waste. Gallium and scandium are small-volume metals, but they create outsized pressure when supply tightens. If Supra can prove its process at pilot scale, waste recovery could become a more credible answer to critical mineral concentration.

Rhenium Deficit Persists, Boosting Recycling Prospects

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Rhenium Recycling

Rhenium, a rare metal critical for aerospace, medical, and catalyst applications, is facing a growing supply deficit, driving prices to new highs. As demand continues to surge, particularly from the aerospace and medical sectors, the need for rhenium is expected to increase further, creating a shortage that could significantly impact long-term contracts and stockpiles. The rising costs and limited supply of primary rhenium have prompted a renewed focus on recycling, with many buyers turning to secondary sources to secure supplies.

Strong Demand Drives Price Surge

Over the past few months, rhenium prices have seen a sharp rise, with strong demand from aerospace and medical applications leading the charge. From late June to early September 2024, prices surged in major markets including the U.S., Europe, and China. Although prices have stabilized recently, consumers, especially in the aerospace sector, are becoming more concerned with availability rather than the spot price. Rhenium producers have reported depleted stockpiles, exacerbating the ongoing supply squeeze.

A major contributing factor to the shortage has been the dramatic increase in Chinese rhenium imports, with China importing over 26 tons of rhenium from Chile in 2023—about one-third of the world’s annual output. This surge is linked to China’s efforts to boost its aviation engine technology and reduce dependence on foreign suppliers for both civil and military aircraft.

Medical Sector Adds to Growing Demand

Rhenium’s role in medical implants has also become a significant driver of demand. The U.S. Food and Drug Administration (FDA) approved the use of the molybdenum-rhenium (Mo-50Re) alloy in medical implants in August 2024, marking a breakthrough that could replace cobalt-chromium and titanium-based materials in various implants. The medical sector’s rhenium demand is expected to range from 10 to 20 tons over the next two years, further tightening the already constrained supply. While the medical market in China remains uncertain, the country’s growing consumption in this field could add pressure to global supply chains.

Supply Constraints and the Need for Recycling

Rhenium’s supply is highly inelastic, meaning it cannot quickly adjust to changes in demand. The metal is primarily extracted as a by-product of copper and molybdenum sulphide concentrates, and its production process is complex and costly. As a result, it is difficult to ramp up production quickly in response to spikes in demand, and with long-term contracts already accounting for most of the world’s rhenium output, spot sales are limited.

With limited primary supply available, many consumers in the aerospace and medical sectors are now turning to secondary materials. Rhenium recycling has emerged as a viable solution in an environment of rising prices. According to James Peer, director of Maritime House, recycling serves as a natural hedge in a market with an unreliable primary supply. Dandy Roh, CEO of DongASpecialMetal, also confirmed that with prices on the rise, recycling is becoming increasingly attractive.

The U.S. Geological Survey (USGS) reported that approximately 25,000 kg of secondary rhenium was produced worldwide in 2023, reflecting growing interest in recycled material. However, despite the potential for recycling to ease supply pressures, there is no direct substitute for rhenium in many of its critical applications, particularly in superalloys and catalysts. This lack of alternatives compounds the challenges posed by the supply crunch.

Future Outlook: Higher Prices and Potential Substitutes

Given the continued supply constraints, rhenium prices are expected to rise further. However, prices would need to increase significantly before end-users consider switching to substitute materials. While alternatives such as gallium, germanium, and indium are being evaluated for use in rhenium catalysts, they are not yet seen as viable substitutes in superalloys. Consequently, the increasing demand for rhenium across various sectors suggests that the metal’s value will continue to rise, reinforcing the case for recycling as a key strategy to mitigate supply risks.

As rhenium prices continue to climb, recycling will likely play an essential role in meeting the growing demand, providing a necessary hedge for industries dependent on this critical metal.

US gallium production: DOE’s $6mn TRACE-Ga to secure critical supply

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US gallium production: DOE’s $6mn TRACE-Ga to secure critical supply
Energywerx

US gallium production gets a targeted boost under DOE’s new TRACE-Ga program. The initiative funds pilot plants that deliver 1 t/yr of 99.99% gallium. As a result, US gallium production could finally reduce import risk and price shocks.

What TRACE-Ga funds and requires

The program backs recovery from Bayer liquor and zinc residues at industrial scale. Awardees must pass a 14-day trial and produce 50 kg at 4N purity. Energywerx will manage the process and validate performance data. Meanwhile, submissions close on 20 November, with selections in late 2025. Therefore, early movers can lock in engineering momentum and offtake interest.

Why US gallium production matters now

China controls nearly all primary gallium output and restricted US exports. That constraint exposed defense, power electronics, LED, and solar supply chains. The USGS now tags gallium risk as high on its draft 2025 list. Consequently, US gallium production from residues can harden domestic MRO and chip back-ends. The goal is reliable GaN and GaAs inputs at competitive cost.

Developers should prioritize impurity control, reagent recycling, and modular plant design. In addition, multi-feed flexibility can expand sourcing from alumina and zinc circuits. If pilots scale, capital could flow into bankable commercial units by 2026. That path would anchor US gallium production near downstream device manufacturing.

The Metalnomist Commentary

TRACE-Ga is pragmatic policy aimed at mid-TRL bottlenecks, not labs. Watch purity, operating cost per kilogram, and secured offtake; those metrics will decide who scales.

Metallium and Glencore e-waste recycling partnership targets critical metals

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Metallium and Glencore e-waste recycling partnership targets critical metals
Metallium

The Metallium and Glencore e-waste recycling partnership signals a strategic shift in critical metals sourcing. Under the deal, Glencore will become a major supplier of e-waste feedstock to Metallium. The Texas facility is scheduled to start commercial operations in 2026, processing complex electronic scrap streams. This early alignment anchors volumes ahead of construction and underpins the Metallium and Glencore e-waste recycling partnership.

Flash joule heating and feedstock security

Metallium will use flash joule heating technology to recover metals from synthesized LED manufacturing scrap and other residues. The process rapidly heats feedstock in a controlled chlorine atmosphere, liberating valuable elements into saleable chlorides and hydroxides. Metallium reports successful recovery of gallium, antimony, indium and other critical metals using this proprietary route. Meanwhile, the Metallium and Glencore e-waste recycling partnership secures diverse feedstock streams and technical support for incoming materials. Glencore will offtake up to 75 percent of most output, excluding certain high-value metals and rare earths.

Implications for critical metals and recycling markets

The Metallium and Glencore e-waste recycling partnership aims to de-risk project financing and market access ahead of plant start-up. By locking in a major offtaker, Metallium can focus on scaling technology and optimising recoveries of premium metals. Excluding gallium, germanium, indium and rare earth elements from the Glencore contract preserves upside for direct marketing. In parallel, Metallium has signed feedstock and collaboration agreements with Ucore, expanding its North American ecosystem. The agreement currently runs to year-end, with an option to extend or renegotiate as volumes grow.

The Metalnomist Commentary

This partnership highlights how trading houses are pivoting into e-waste to secure future critical metals exposure. For recyclers, combining proprietary processing like flash joule heating with strategic offtake is becoming a de-risking blueprint. Investors should watch how quickly Metallium proves commercial yields, as that will shape future e-waste project valuations.
 

GEM Expands Critical Mineral Recycling to Strengthen China’s Supply Chain Independence

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GEM Expands Critical Mineral Recycling to Strengthen China’s Supply Chain Independence
GEM

High-Purity Germanium and Tungsten Recycling to Double by 2027

Chinese battery materials producer GEM is expanding its critical mineral recycling capacity to support China’s supply chain independence. In its 2024 annual report, GEM announced significant investments in germanium recycling and high-purity refining, driven by Beijing’s resource localization strategy. The company aims to rapidly scale its recycling of gallium, indium, and scandium, all of which are subject to China’s recent export restrictions.

Strategic Metals and Battery Materials Drive Growth

GEM will also broaden recycling operations for minor metals such as molybdenum, tantalum, and niobium. These materials are essential for defense and electronics manufacturing. The company currently recycles over 20 metals from waste batteries, electronics, vehicles, and plastics across its eight Chinese plants and international sites in South Korea, South Africa, and Indonesia.

Doubling Output of Tungsten and Platinum Group Metals

To support industrial demand, GEM plans to double its output of tungsten powder and electronic metals to 20 tonnes by 2027. Tungsten’s high conductivity and melting point make it ideal for semiconductors and photovoltaic thin-film cells. In addition, GEM will build a demonstration plant for platinum, palladium, and rhodium refining, targeting similar output growth by 2027.

Core Battery Material Output Set for 46% Growth in 2025

The company expects a strong rise in core product output—nickel, ternary precursors, cobalt, cathode materials, and recycled batteries—with a projected 46% increase in 2025. From 2025 to 2027, the annual growth rate is forecast to moderate to 36%, still reflecting robust demand for EV and energy storage materials.

The Metalnomist Commentary

GEM’s expansion underscores China’s push for mineral sovereignty in a geopolitically constrained environment. By scaling critical mineral recycling, GEM reduces import dependence while reinforcing its leadership in the global circular economy for strategic metals.

US Critical Materials Funding Targets Recycling, Refining and DLE Technologies

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US Critical Materials Funding Targets Recycling, Refining and DLE Technologies
DOE (the Department of Energy)

US critical materials funding is moving deeper into domestic production and refining after the Department of Energy announced up to $69 million for new technologies and processes. The notice of funding opportunity, announced on 7 April, targets critical materials including rare earth elements.

The funding is designed to help move technologies from bench-scale innovation toward commercial deployment. That focus is important because the US critical materials funding gap is often not resource identification, but the ability to scale processing, refining and recovery technologies into reliable industrial supply.

The programme covers three main areas: recycling from manufacturing and end-of-life scrap, refining of gallium, germanium and silicon, and direct lithium extraction alongside critical material recovery from volcanic-hosted geothermal systems.

Recycling and Refining Move Higher on the US Supply Chain Agenda

The first funding area targets recycling from manufacturing scrap and end-of-life scrap. This could support recovery routes for valuable metals already present in electronics, magnets, batteries, industrial components and advanced manufacturing waste streams.

The second area focuses on refining gallium, germanium and silicon. These materials are strategically important for semiconductors, optics, solar technologies, defense systems, data infrastructure and advanced electronics.

US critical materials funding for these metals reflects growing concern over concentrated supply chains. China dominates several critical material processing routes, making domestic refining capability a central issue for industrial resilience and national security.

DLE and Geothermal Systems Add New Resource Pathways

The third topic area covers direct lithium extraction and exploration of critical materials and rare earth elements from volcanic-hosted geothermal systems. This could open new pathways for lithium and mineral recovery beyond conventional mining.

Direct lithium extraction remains strategically important because it may improve recovery efficiency, reduce land use and shorten production timelines compared with traditional brine evaporation. However, commercial scalability remains the decisive test.

The DOE said the $69 million opportunity is part of several programmes totalling nearly $1 billion. These initiatives aim to advance mining, processing and manufacturing technologies across the critical materials supply chain.

The Metalnomist Commentary

The US critical materials funding programme shows that Washington is now targeting the weakest links between laboratory success and industrial supply. The key test will be whether these grants create commercial refining and recovery capacity, not only promising pilot projects.

MTM Critical Metals Recovers High-Grade Antimony from E-Waste Using FJH Technology

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MTM Critical Metals Recovers High-Grade Antimony from E-Waste Using FJH Technology
MTM Critical Metals

Breakthrough in Antimony Recovery from E-Waste

Australia’s MTM Critical Metals has successfully recovered high-grade antimony from electronic waste using its proprietary flash joule heating (FJH) technology. Antimony, classified as a “critical mineral” by the US Geological Survey, is widely used in flame retardants, military applications, and lead alloys for batteries and cables. The breakthrough positions MTM to expand its US operations as it evaluates which metals to target for commercial recovery at scale.

The company has already secured a pre-permitted demonstration site in Texas and plans to commission the plant by December 2025, with commercial production starting in 2026. This facility builds on MTM’s prior work in gallium recycling, first announced last year, and reflects the growing demand for advanced recovery solutions to secure critical mineral supplies.

Scaling US Operations with Strategic Partnerships

MTM has secured long-term agreements totaling 1,100 tonnes per year of e-waste feedstock. This includes a five-year deal with Dynamic Lifecycle for 700 tonnes per year of e-scrap. The company is also seeking government funding to support its US expansion.

The proprietary FJH technology, exclusively licensed to MTM’s US subsidiary Flash Metals USA, was originally developed at Rice University in Texas. It rapidly heats material in a controlled chlorine atmosphere, achieving high-purity recovery of target metals. Earlier trials demonstrated strong results in recovering gallium from LED manufacturing scrap, and the company now aims to replicate that success for antimony and other critical minerals.

The Metalnomist Commentary

MTM’s progress underscores how proprietary recovery technologies can reshape critical mineral supply chains. With antimony supplies dominated by China, domestic recovery from e-waste could reduce US import dependency and enhance supply security. If scaled effectively, MTM’s Texas facility could become a strategic hub for recycling high-value metals.

Metallium raises $50.6mn for Texas plant to scale e-waste metals recovery

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Metallium raises $50.6mn for Texas plant to scale e-waste metals recovery
Metallium

Metallium raises $50.6mn for Texas plant as it accelerates commissioning at its Gator Point Technology Campus. Metallium raises $50.6mn for Texas plant through a capital raise backed by US institutional investors. As a result, Metallium can expand capacity, secure feedstock, and strengthen working capital during ramp-up.

Metallium raises $50.6mn for Texas plant to push its proprietary Flash Joule Heating (FJH) technology closer to repeatable industrial output. The company started commissioning in December. Meanwhile, it is prioritizing printed circuit board processing to recover copper, tin, gold, and silver in the first commissioning stage.

What the funding supports in capacity, feedstock, and technology

Metallium plans to allocate the proceeds across equipment, feedstock procurement, and technology development. The company also needs liquidity because e-waste recycling strains working capital. Therefore, a larger balance sheet can help stabilize purchase programs for scrap-rich inputs during volatile metals pricing.

The ramp-up also signals an intent to move beyond basic recovery into higher-value separation. However, recyclers must prove consistent yields and impurity control across variable feed streams. That execution risk often defines whether early-stage plants reach steady-state utilization.

Why gallium and germanium processing matters for critical minerals supply chains

Metallium plans to add a gallium and germanium processing line after its initial commissioning stage. Gallium and germanium sit at the intersection of semiconductors, defense electronics, and export-controlled materials. As a result, any credible non-Chinese recovery route attracts strategic interest from buyers and policymakers.

Glencore has also agreed to supply 2,400t/yr of electronic waste to support Metallium’s Texas buildout. Meanwhile, a secured feedstock channel reduces one of the biggest risks in recycling economics. However, Metallium still needs to translate contracted volumes into qualified products that meet customer specs.

The Metalnomist Commentary

This raise looks like a scale-up bet on execution rather than a pure technology story. However, Metallium must prove throughput and unit economics before it moves into gallium and germanium. The recyclers that lock feedstock and deliver consistent purity will capture the premium.

Neo Performance Materials Sells Oklahoma Rare Metals Plant to Strengthen Core Operations

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Neo Performance Materials

Neo Performance Materials, a Canadian specialty materials producer, has finalized the sale of its rare metals facility in Quapaw, Oklahoma, marking a strategic shift to focus more intently on its core business activities.

Strategic Divestiture to Optimize Operations

Neo has sold its 80% equity interest in the Quapaw facility to Kevin Reading, the plant's general manager and co-founder, for $1.5 million in cash. This transaction is not just a transfer of ownership but includes a reciprocal supply agreement, which underscores the ongoing relationship between Neo and the Quapaw facility. Under the terms of the deal, Quapaw will continue to purchase gallium from Neo for the next seven years and will supply gallium scrap to Neo's recycling operations in Peterborough, Ontario.

Quapaw's Role in Gallium Production

The Quapaw plant is noted for its production of gallium trichloride, a critical component in the manufacturing of light-emitting diode (LED) lighting, lithium batteries, integrated circuit chips, and capacitors. This material plays a vital role in various high-tech applications, making the plant's output essential to the tech and electronics industries.

The sale is part of Neo's broader strategy to streamline its global operations and focus on enhancing the efficiency and profitability of its core business segments. This move is intended to reallocate resources and attention to areas with the highest strategic importance and growth potential.

Germany, India strengthen critical minerals ties as Europe diversifies supply chains

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Germany, India strengthen critical minerals ties as Europe diversifies supply chains
Germany, India

Germany, India strengthen critical minerals ties through a new set of bilateral agreements on minerals and semiconductors. Germany, India strengthen critical minerals ties as both governments seek deeper strategic co-operation. As a result, the partnership signals a push toward shared exploration, processing, and recycling pathways.

Germany, India strengthen critical minerals ties during Chancellor Friedrich Merz’s first Asia visit. The two sides signed 19 joint declarations spanning minerals, semiconductors, defence, green energy, and mobility. Meanwhile, officials said they will explore critical mineral assets in India, Germany, and third countries.

India’s National Critical Mineral Mission reshapes the investment pipeline

India’s National Critical Mineral Mission sets a clear growth agenda for 2024–31. The plan targets roughly $4bn in spending across exploration, recycling, processing, and stockpiling. Therefore, it creates a policy framework that could accelerate project permitting and industrial scale-up.

The mission’s targets are ambitious by design. It aims for 1,200 exploration projects and 50 overseas mining assets, alongside recycling incentives and a national stockpile system. However, execution will depend on financing, local capacity, and how quickly projects move from discovery to production.

Why Germany’s demand meets India’s supply constraints

Germany’s strategic logic centers on reducing critical metals dependence on China. Export controls on rare earths previously disrupted European renewable energy and automotive supply chains. Therefore, Germany wants alternative channels for rare earths, cobalt, gallium, and battery-linked inputs.

India offers reserves across several transition minerals but still lacks enough extraction and processing depth. The country remains heavily import-dependent for lithium, cobalt, nickel, and rare earth elements. Meanwhile, Germany’s technology base in manufacturing and advanced processing could complement India’s upstream ambitions.

The Metalnomist Commentary

This partnership looks less like diplomacy and more like industrial insurance. However, the real value will come from joint projects that lock in processing and recycling, not only mine access. If the EU–India trade track advances, it could accelerate capital flows into third-country assets.

Pioneer Minerals Springfield Tungsten Project Targets US Critical Minerals Supply

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Pioneer Minerals Springfield Tungsten Project Targets US Critical Minerals Supply
Pioneer Minerals

Pioneer Minerals Springfield tungsten project development has advanced after the Australian critical minerals explorer signed a non-binding MOU with Mineral Technologies to assess tungsten processing in Idaho. The agreement will evaluate whether tungsten concentrate can be commercially produced from ore and tailings at the site.

The Pioneer Minerals Springfield tungsten project could offer a near-term staged pathway to production if processing tests confirm viable recovery. The work will focus on technical programmes designed to assess mineral processing, concentrate quality and project development potential.

The Pioneer Minerals Springfield tungsten project is strategically relevant because US tungsten supply has tightened following Chinese export controls introduced in February 2025. Tungsten remains essential for defense, aerospace, electronics, cutting tools, hard metals and other high-performance industrial applications.

Tungsten Processing Tests Could Unlock Ore and Tailings Value

Pioneer Minerals and Mineral Technologies will assess the feasibility of producing tungsten concentrate from both ore and tailings at Springfield. This approach could improve project economics by recovering value from previously mined or stockpiled material.

Tailings recovery is especially important in critical minerals because it can reduce development timelines, lower mining intensity and make use of material already available at the site. If successful, it could support a faster route to domestic tungsten supply than a conventional greenfield mine.

The companies will also evaluate gallium mineralisation and potential recovery at the site. Gallium adds strategic value because it is used in semiconductors, optics, defense systems and advanced electronics, while non-China supply remains limited.

China Controls Raise US Tungsten Security Concerns

China remains the dominant tungsten producer, accounting for about 79% of global mined output in 2025. Its export controls, combined with declining ore grades, have increased pressure on US supply chains.

The US Geological Survey has identified tungsten as essential for economic and national security, and the metal remains on the US critical minerals list. This status could strengthen the case for government support as Pioneer prepares funding applications for domestic critical mineral production.

Pioneer’s plan fits Washington’s broader effort to rebuild critical minerals capacity through mining, processing, recycling and advanced materials projects. The main challenge will be converting technical studies into a reliable concentrate supply route that can meet industrial and defense specifications.

The Metalnomist Commentary

Pioneer’s Springfield project shows how tungsten security is becoming a processing and recovery challenge, not only a mining issue. If ore, tailings and gallium recovery can be integrated, the site could become a small but strategically useful addition to the US critical minerals chain.

EU US Critical Minerals Action Plan Targets Supply Chain Security

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EU US Critical Minerals Action Plan Targets Supply Chain Security
US EU

EU US Critical Minerals Action Plan marks a deeper transatlantic effort to secure strategic raw materials as China export controls and global protectionism reshape industrial supply chains. The US and EU have signed the plan to diversify sourcing, strengthen resilience and coordinate responses to mineral supply disruptions.

The EU US Critical Minerals Action Plan is significant because it moves beyond general diplomatic language. It allows both sides to use trade and market tools, including border-adjusted price floors, standards-based markets, subsidies to close price gaps and offtake agreements.

The EU US Critical Minerals Action Plan also includes stockpile cooperation, technical coordination, regulatory alignment and standards for mining, processing and recycling. This shows that Washington and Brussels are now treating critical minerals as industrial security assets, not only commodity inputs.

Price Floors and Offtake Tools Signal Stronger Market Intervention

The plan highlights a major shift in western raw materials policy. The US and EU are preparing to coordinate tools that can make non-China supply more commercially viable.

Border-adjusted price floors could help protect strategic mineral projects from low-cost competition. This matters because many western projects struggle to compete against established Chinese processing chains when prices fall.

Subsidies to address price gaps serve the same purpose. They can help bridge the cost difference between secure, traceable supply and cheaper material from dominant incumbent producers.

Offtake agreements are also central. Long-term purchase commitments can give miners, refiners and recyclers the revenue visibility needed to finance new capacity.

This is especially important for rare earths, gallium, germanium, graphite, lithium, cobalt, nickel, manganese and other strategic materials. Many of these markets are small, volatile or heavily concentrated in processing.

The plan also points to standards-based markets. This could support supply chains where environmental, labour, traceability and security standards become part of pricing.

For suppliers, the message is clear. Western buyers may increasingly pay for origin, compliance and resilience, not only the lowest spot price.

Transatlantic Coordination Raises Pressure on China-Linked Supply Chains

The plan will be implemented by the office of the US trade representative and the European Commission’s Directorate-General for trade and economic security. That structure places critical minerals directly inside trade and economic security policy.

The US has already moved aggressively in critical minerals. It has used the Defense Production Act, supported price floors and offtake agreements, and invested in overseas mineral assets to reduce reliance on China.

The EU has historically been more cautious about direct market intervention. However, its position is changing as supply risks increase and European manufacturers face tighter access to strategic raw materials.

Earlier this month, the European Commission launched a critical raw materials platform to match EU buyers with suppliers and aggregate demand. The new US-EU action plan builds on that direction and gives Europe a broader external coordination channel.

Rapid response mechanisms are also important. Export controls, shipping disruption, sanctions or sudden shortages can quickly affect defence, semiconductors, batteries, magnets, aerospace and clean energy manufacturing.

Stockpile cooperation could provide a temporary buffer. But the larger strategic goal is to build durable supply, processing and recycling capacity across allied economies.

The plan therefore strengthens the policy architecture for western mineral security. It also raises the likelihood that future raw material trade will be shaped by origin rules, price support, industrial standards and government-backed purchasing.

The Metalnomist Commentary

The EU-US plan shows that critical minerals policy is moving from risk awareness to market design. The decisive question is whether price floors, offtakes and subsidies can create real processing capacity before the next supply shock hits.

US Critical Minerals Processing Funding Accelerates Domestic Supply Chains

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US Critical Minerals Processing Funding Accelerates Domestic Supply Chains
US critical minerals mining

The US critical minerals processing funding will reach up to $975mn, according to the DOE. The US critical minerals processing funding targets onshore capacity for rare earths and key byproducts. As a result, the plan supports semiconductors, defense, and clean energy supply chains. The US critical minerals processing funding also prioritizes recycling pathways to reduce import dependence.

DOE NOFOs target rare earths, semiconductors, and recycling

The DOE will issue NOFOs to expand processing capacity. The focus includes rare earth elements, gallium, and germanium. Meanwhile, the program backs recovery of mineral byproducts from industry waste. Therefore, the awards should enhance resilience across strategic materials. Companies must show scalable, cost-competitive processing routes. Applicants should also prioritize environmental performance and community benefits.

Demonstration plant funding underscores byproduct sourcing

A rare earth demonstration plant may receive up to $135mn. The facility must source feedstock from mining and industrial byproducts. Consequently, the model promotes circularity and faster deployment. However, project success requires stable feedstock contracts and permitting. Clear milestones will govern disbursements and risk management. Therefore, credible partners and bankable offtakes will be essential.

The Metalnomist Commentary

The DOE’s package pushes beyond extraction into midstream processing. Real impact hinges on execution speed, reliable feedstock, and downstream buying. Watch award timing, matching capital, and technology readiness over the next year.

Solvay Starts Rare Earth Oxide Refining for Magnet Production

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Solvay Starts Rare Earth Oxide Refining for Magnet Production
Solvay

La Rochelle Plant Begins Neodymium and Praseodymium Oxide Output

Belgian chemical company Solvay has officially begun refining neodymium and praseodymium oxides for permanent magnets at its La Rochelle facility in France. This expansion marks the company's first step into magnet-grade rare earth oxide production, positioning it as a key player in the European supply chain for critical magnet materials.

The La Rochelle plant, operational since 1948 and owned by Solvay since 2011, previously focused on refining cerium and supplying sectors such as automotive catalysts and healthcare. The new line now enables production of neodymium-praseodymium (NdPr) oxides, with potential for separating dysprosium and terbium in the future, according to a Solvay spokesperson.

Europe Strengthens Rare Earth Independence

This development comes amid growing urgency in the West to reduce dependency on Chinese rare earths. China’s recent export restrictions on heavy rare earths and magnet materials—announced in response to new U.S. tariffs—have underscored the fragility of global supply chains. These restrictions follow similar export limits on gallium and tungsten, which led to global supply disruptions and price surges.

Solvay’s La Rochelle initiative aligns with Europe’s strategic goal of securing a domestic rare earth supply chain. The company aims to meet 30% of Europe’s demand for magnet-focused rare earth oxides by 2030. Solvay also emphasized the significance of this production line as a major milestone in its contribution to Europe's energy and industrial independence.

Securing Supply Through Recycling and Strategic Partnerships

To ensure consistent feedstock, Solvay has partnered with Canadian firm Cyclic Materials to source recycled mixed rare earth oxide. Additionally, Solvay has a strategic alliance with rare earths services company Carester, which is developing the Caremag refining plant in Lacq, France. These partnerships help diversify sourcing and reduce reliance on virgin materials or imports.

The Metalnomist Commentary

Solvay’s magnet-focused rare earth production is a timely and strategic response to rising geopolitical tensions and critical mineral nationalism. As Western economies scramble to localize high-tech material supply chains, Solvay’s effort not only bridges a crucial gap in refining capacity but also sets a precedent for integrating recycling and partnerships into Europe’s rare earth future.

EU Raw Materials Platform Targets Strategic Metals Supply Security

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EU Raw Materials Platform Targets Strategic Metals Supply Security
EU, Raw Materials Platform

EU raw materials platform development has advanced as the European Commission launched a new online mechanism to connect European offtakers with suppliers of strategic raw materials. The EU raw materials platform is designed to support demand aggregation, joint purchasing and better market information across critical supply chains.

The platform covers all 17 strategic raw materials listed under the Critical Raw Materials Act. These materials are central to batteries, rare earth magnets, defence systems, semiconductors, renewable energy, advanced manufacturing and industrial resilience.

EU raw materials platform activity will take place through structured rounds. The first diversification round will target operational projects where materials are already available or expected in the near term, with a focus on rare earths, defence-related materials and battery metals.

The mechanism will not provide financing or directly support negotiations. However, it can improve visibility across supply, demand, storage, investment opportunities and financing options, which are often fragmented in strategic raw material markets.

Demand Aggregation Could Strengthen Minor Metals Markets

Demand aggregation is the most important function of the platform. Many strategic materials are needed in small volumes by individual companies, but they carry high industrial and defence value.

This is especially true for minor metals such as gallium and germanium. These materials are used in semiconductors, optics, solar technologies, defence electronics and advanced communications systems, but individual buyers may not require large enough volumes to support new supply projects alone.

Pooling demand can change that equation. If several European buyers aggregate requirements, suppliers may see larger, more stable offtake volumes. This can improve confidence for upstream mining, refining, recycling and midstream processing projects.

The same logic applies to rare earths. Magnet makers, motor producers, defence manufacturers and clean-energy equipment suppliers often need secure access to neodymium, praseodymium, dysprosium and terbium. Aggregated demand could make European purchasing more credible to non-EU suppliers.

Battery metals may also benefit. Lithium, cobalt, nickel, manganese and graphite supply chains are increasingly shaped by long-term offtake, regional qualification and industrial policy. A shared platform can help buyers identify supply options before shortages become acute.

The platform therefore addresses a structural weakness in Europe’s critical materials strategy. Europe has strong downstream industries, but many of those industries purchase strategic metals in fragmented, company-by-company channels.

By collecting and exchanging market data, the mechanism could help convert dispersed demand into more bankable offtake signals. That is important for suppliers seeking financing, customers and predictable long-term buyers.

Platform Supports EU Diversification but Does Not Replace Financing

The EU raw materials platform is part of a broader strategy to reduce external dependencies under the Critical Raw Materials Act. Europe wants to diversify supply, strengthen domestic processing and secure access to materials needed for the energy transition and defence.

However, the mechanism is not a full project-financing tool. Negotiations will take place outside the system, and the platform will not guarantee deals or provide direct financial backing.

This limits what the mechanism can achieve by itself. Strategic raw material projects still need permitting, capital, technology, customer qualification, logistics and long-term price visibility.

But the platform can still play a useful role. It can bring buyers and suppliers into the same market framework, improve demand transparency and identify where joint purchasing could support supply diversification.

The first diversification round will be important because it focuses on projects close to availability. This avoids the problem of relying only on long-dated mining projects that may take years to enter production.

The inclusion of storage options is also relevant. Strategic materials supply security is not only about production. It also depends on inventories, emergency access, buffer stocks and coordinated procurement during disruption.

The broader platform also includes gas and hydrogen mechanisms. This shows that the EU is applying a similar strategic procurement model across energy and raw materials, where fragmented buying can weaken market leverage.

For Europe’s industrial base, the key issue is execution. The platform must move beyond data sharing and create real commercial connections between offtakers and suppliers. Otherwise, it risks becoming another policy tool without enough market impact.

For suppliers, the opportunity is clearer. A credible pool of European demand could make projects more attractive, especially in rare earths, gallium, germanium and battery materials where supply diversification is politically urgent.

The Metalnomist Commentary

The EU raw materials platform is not a financing solution, but it could become an important demand-signalling tool. Its success will depend on whether Europe can turn fragmented buyer interest into real offtake volumes that support new strategic metals supply.