Showing posts sorted by relevance for query battery cathode. Sort by date Show all posts
Showing posts sorted by relevance for query battery cathode. Sort by date Show all posts

Ronbay Secures Major Sodium-Ion Battery Cathode Order, Strengthening Market Presence

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Ningbo Ronbay

Expanding Sodium-Ion Battery Cathode Production

Ningbo Ronbay, a leading Chinese battery cathode active material (CAM) manufacturer, has secured a 3,000-tonne order for sodium-ion battery cathode material from an undisclosed client. The company announced the deal on January 20, reinforcing its position as a key player in China’s sodium-ion battery market.

Ronbay has been heavily investing in sodium-ion cathode materials, committing 3 billion yuan ($413 million) in September 2023 to construct a 50,000-tonne-per-year production complex, which is set to launch by 2026. This investment aligns with the growing global demand for sodium-ion batteries, expected to reach 23GWh in 2025.

China’s Sodium-Ion Battery Industry Gains Momentum

China’s leading battery manufacturers, including CATL, BYD, and Hithium, have accelerated their sodium-ion battery production. BYD, for example, started construction on a 30 GWh per year sodium-ion battery plant in Xuzhou, Jiangsu province, in early 2024. These expansions indicate increasing market confidence in sodium-ion battery technology, particularly for two-wheeled and three-wheeled vehicles, energy storage, and power applications.

The Chinese government has also actively promoted sodium-ion battery development as part of its 2021-2025 energy strategy, emphasizing the battery’s cost advantages, resource abundance, and environmental benefits compared to lithium-ion batteries. However, despite strong governmental backing, sodium-ion battery shipments in 2024 fell short of earlier expectations due to higher manufacturing costs compared to lithium-ion and lead-acid batteries, according to Chinese research institution EV Tank.

Ronbay’s Role in the Growing Sodium-Ion Market

With this latest order, Ronbay strengthens its leadership in sodium-ion cathode production, ensuring steady market growth despite industry challenges. The company’s large-scale investment and expanding production capacity position it to capitalize on rising sodium-ion battery adoption while supporting China's push for alternative battery technologies.

As demand for low-cost and sustainable energy storage solutions rises, sodium-ion batteries could play a crucial role in diversifying the global battery supply chain, particularly as a viable alternative to lithium-ion technology.

Ronbay sodium-ion battery cathode project breaks ground in Hubei

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Ronbay sodium-ion battery cathode project breaks ground in Hubei
Ronbay

Ronbay sodium-ion battery cathode project construction has started in Hubei today. The 6,000 t per year line represents a 1.2bn yuan investment. However, the company has not disclosed a commissioning date.

Ronbay sodium-ion battery cathode project expands a diversified CAM portfolio. The firm already produces NCM, LMFP, and sodium-ion CAM. Meanwhile, high-nickel NCM remains the company’s core product.

Capacity roadmap and demand outlook

Output reached 137,351 t in 2024, up 34% year on year. Ronbay plans 130,000–150,000 t of CAM in 2025. In 2023, it committed 3bn yuan for 50,000 t per year by 2026.

The company booked a 3,000 t sodium-ion cathode order this year. Global sodium-ion demand may reach 23 GWh in 2025. As a result, two- and three-wheelers and storage will drive early volumes.

Commercial implications for sodium-ion batteries

Sodium-ion batteries promise cost and safety advantages versus LMFP. Resource abundance lowers raw-material risk and improves scalability. Therefore, the Ronbay sodium-ion battery cathode project targets mass-market applications.

Hubei offers logistics access and supplier depth for scale-up. However, customer qualification and procurement cycles may slow adoption. Consequently, initial shipments should concentrate on mobility and stationary storage.

The Metalnomist Commentary

The Ronbay sodium-ion battery cathode project signals prudent hedging beyond lithium-based chemistries. Execution will hinge on qualification wins, cost curves, and timely ramp at both 6,000 t and 50,000 t assets.

SHFE Indonesian Nickel Cathode Brands Strengthen Indonesia’s Class I Nickel Role

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SHFE Indonesian Nickel Cathode Brands Strengthen Indonesia’s Class I Nickel Role
The Shanghai Futures Exchange

SHFE Indonesian nickel cathode brands have gained a major credibility boost after the Shanghai Futures Exchange approved two Indonesian-produced nickel cathode brands for delivery against SHFE contracts. The approvals cover PTENICO from Eternal Nickel Industry and DX zwdx from CNGR Dingxing New Energy.

The approvals mark an important step in Indonesia’s move from nickel ore and intermediate products toward exchange-deliverable Class I nickel. Indonesia has already become the world’s dominant nickel processing hub, but exchange approval gives its refined metal greater financial-market recognition.

SHFE Indonesian nickel cathode brands also reinforce the role of Chinese-backed industrial parks in building Indonesia’s downstream nickel value chain. Both approved producers are linked to major Chinese groups with strong positions in stainless steel or battery materials.

The development matters because exchange-deliverable nickel sits at the intersection of physical supply, futures market liquidity and industrial procurement. Approval by SHFE gives the brands wider acceptance among Chinese market participants and strengthens Indonesia’s role in Class I nickel trade.

Tsingshan and CNGR Extend Indonesia’s Refined Nickel Platform

Eternal Nickel Industry’s PTENICO brand was approved by SHFE after previously being listed on the London Metal Exchange on 16 December 2025. The company is a subsidiary of Chinese stainless steel producer Tsingshan Holding Group.

The plant is located in the Weda Bay Industrial Park in Halmahera, North Maluku. It uses an electrolytic process and has 50,000 t/yr of nickel cathode capacity, with nickel content of 99.96%.

Tsingshan’s involvement is strategically important. The group transformed global nickel markets through Indonesian nickel pig iron and stainless steel expansion, and it is now extending that influence into refined Class I nickel.

CNGR Dingxing New Energy’s DX zwdx brand was also approved by SHFE. The plant is located at the Indonesia Morowali Industrial Park and also uses an electrolytic process. It has 50,000 t/yr of nickel cathode capacity, with nickel content of 99.96%.

CNGR Dingxing is a subsidiary of CNGR, a major Chinese lithium-ion battery cathode active material precursor producer. This gives the brand a direct connection to battery materials supply chains, not only stainless steel demand.

The LME accepted CNGR Dingxing’s Indonesian nickel cathode brand in May 2024. It also approved cobalt cathode produced by CNGR in Qinzhou, Guangxi, in March, showing the company’s expanding exchange-approved metals footprint.

Together, PTENICO and DX zwdx represent 100,000 t/yr of Indonesian nickel cathode capacity. Their SHFE approval gives Indonesia a stronger position in futures-linked refined nickel supply.

Exchange Approval Changes Nickel Market Positioning

The two brands are the first Indonesian-produced nickel cathodes approved by SHFE for delivery. That is significant because Indonesia’s nickel rise was initially built around ore, nickel pig iron, ferronickel, matte and mixed hydroxide precipitate.

Exchange-deliverable cathode is a different market category. It requires tighter quality control, brand recognition and acceptance by financial and physical market users.

SHFE has approved Chinese-produced nickel cathode brands totalling 121,000 t since 2024. Adding Indonesian brands expands the pool of deliverable material and shows how Indonesia is being integrated into China’s nickel pricing and delivery system.

This could gradually influence nickel market structure. More deliverable Indonesian metal may improve flexibility for Chinese buyers, increase acceptable supply for futures settlement and strengthen the link between Indonesian production and Chinese exchange pricing.

The approvals also come during a period of Class I nickel oversupply. LME and SHFE inventories have risen as new refined nickel capacity has entered the market faster than demand growth from batteries and alloys.

Against that backdrop, brand approval can become a competitive advantage. Producers with exchange-deliverable status may have better access to financing, trade channels and customers that require recognised specifications.

For Indonesia, the approval supports a broader industrial policy objective. The country wants to capture more value from its nickel resources by moving beyond raw ore and intermediate exports into higher-value metal and battery materials.

For China, the approvals deepen supply-chain integration with Indonesian assets. Chinese companies are not only investing in Indonesian mines and smelters; they are building exchange-recognised refined metal capacity that can serve Chinese industrial and financial markets.

The Metalnomist Commentary

SHFE approval of Indonesian nickel cathode brands confirms that Indonesia is moving deeper into Class I nickel, not only bulk stainless and battery intermediates. The strategic issue now is whether this new exchange-deliverable capacity strengthens market liquidity or adds further pressure to an already oversupplied refined nickel market.

PLS Lithium Phosphate Offtake Signals Shift Toward Midstream Battery Materials

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PLS Lithium Phosphate Offtake Signals Shift Toward Midstream Battery Materials
PLS Lithium

PLS lithium phosphate offtake with China’s Ningbo Ronbay New Energy Technology marks a strategic step by the Australian lithium producer into higher-value battery materials. The agreement covers lithium phosphate from PLS’ midstream lithium refining demonstration plant.

PLS lithium phosphate offtake gives the company an early customer pathway as it tests whether spodumene can be converted into an intermediate chemical product with broader downstream appeal. The plant is scheduled to deliver first product in the third quarter of 2026.

PLS lithium phosphate offtake also links the company directly with Ronbay, one of the world’s largest lithium iron phosphate cathode material producers. Ronbay will provide technical support as PLS works to optimise product quality and specification.

The agreement’s price and volume details were not disclosed. But the pricing structure will broadly reference lithium chemical prices, with a proportional mechanism similar to spodumene pricing.

Lithium Phosphate Could Shorten the LFP Supply Chain

PLS’ demonstration plant is designed to produce more than 3,000 t/yr of lithium phosphate. It will consume about 27,000 t/yr of spodumene.

The company took full ownership of the plant from former joint-venture partner Calix in February. That gives PLS more control over the development route as it moves beyond conventional lithium concentrate sales.

The strategic importance lies in the possible use of lithium phosphate as a direct feedstock for LFP cathode production. Some LFP cathode producers are testing lithium phosphate instead of lithium carbonate because it could shorten processing steps and reduce total production costs.

This matters because LFP batteries are gaining share in electric vehicles and energy storage systems. Cathode producers want lower-cost, reliable and scalable lithium inputs that can support high-volume manufacturing.

If lithium phosphate can meet strict cathode specifications, PLS could access a new customer base. Instead of selling only to lithium hydroxide or carbonate converters, it could sell directly into cathode material supply chains.

That would move PLS closer to battery manufacturers and allow it to capture more margin inside the lithium value chain.

Quality Testing Will Determine Commercial Potential

The opportunity remains at an early stage. PLS has warned that lithium phosphate must meet demanding quality requirements before it can become a commercial cathode feedstock.

Battery material customers require tight control over impurities, consistency, particle characteristics and chemical performance. A product that works technically at small scale must still prove reliability across repeated production.

Ronbay’s role is therefore important. As a major LFP cathode producer, it can provide practical feedback on product suitability, processing performance and downstream qualification needs.

The agreement also reflects a broader trend in lithium markets. Producers are no longer focused only on mining and concentrate production. They are looking for midstream products that can reduce processing complexity and improve customer access.

For PLS, lithium phosphate could serve multiple markets. It may supply existing lithium chemical producers, while also opening a direct route to cathode manufacturers.

The demonstration plant will test whether that strategy can move from concept to commercial scale. If successful, it could give spodumene producers a new pathway into battery materials without fully entering carbonate or hydroxide production.

The Metalnomist Commentary

PLS’ lithium phosphate strategy is a clear attempt to move higher in the battery value chain without jumping directly into full chemical conversion. The key test will be whether cathode makers accept lithium phosphate as a reliable feedstock at scale, not just as a technical possibility.

Lopal Marble Bar Lithium Project Deal Extends Chinese Battery Material Supply Strategy

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Lopal Marble Bar Lithium Project Deal Extends Chinese Battery Material Supply Strategy
Lopal

Lopal Marble Bar lithium project acquisition will give China’s battery cathode material producer Lopal Tech another upstream position in Western Australia’s lithium sector. The company has agreed to acquire the Marble Bar project from Global Lithium Resources for A$14.85mn.

The Lopal Marble Bar lithium project is located in the Pilbara region of Western Australia. The project has an estimated resource of 18mn t grading 1.0% lithium oxide.

The Lopal Marble Bar lithium project deal reflects a continuing push by Chinese battery material producers to secure upstream lithium resources. Cathode and battery material companies are looking beyond processing capacity and moving closer to mine supply.

This matters because lithium raw material security remains central to battery supply chains. Even as lithium prices fluctuate, companies with long-term access to spodumene resources can better protect conversion plants, cathode output and customer supply.

Marble Bar Adds Pilbara Resource Exposure

The Marble Bar project gives Lopal direct exposure to a known lithium-bearing region. Western Australia remains one of the world’s most important hard-rock lithium supply bases, with spodumene projects feeding converters and battery material producers across Asia.

The project’s 18mn t resource at 1.0% lithium oxide gives Lopal a potential raw material position, although the acquisition price suggests the asset is still at an early development stage.

For Global Lithium Resources, the sale allows the company to focus more heavily on its larger Manna lithium project. Manna has a resource estimate of 52mn t grading 1.0% lithium oxide.

This creates a clearer portfolio structure. Lopal gains Marble Bar, while GL1 retains its larger Manna asset and existing downstream-linked partnerships.

The transaction also shows that Chinese battery material producers remain willing to invest in Australian lithium assets despite market volatility. Long-term supply security continues to matter more than short-term price weakness.

Manna Links Lopal to Future Offtake Supply

Lopal already has exposure to GL1 through the Manna project. It holds a 5% equity interest in Manna and has signed an offtake agreement to buy 40% of the project’s output.

China’s Canmax has agreed to take another 30% of Manna’s output and also holds a 9.45% stake in GL1. Australian lithium miner Mineral Resources owns 9.85% of GL1.

These relationships show how lithium supply chains are being structured around equity stakes and offtake agreements. Battery material companies want secured feedstock before projects enter production.

For Lopal, the Marble Bar acquisition adds another layer to its Australian lithium strategy. It gives the company project ownership while maintaining future offtake exposure through Manna.

The broader industrial meaning is clear. Chinese battery material producers are not relying only on spot markets. They are building upstream positions, offtake rights and strategic relationships to support long-term lithium chemical and cathode material supply.

The Metalnomist Commentary

Lopal’s Marble Bar deal shows that lithium strategy is shifting from price speculation to resource control. Even in a weaker lithium market, Chinese battery material companies continue to secure upstream positions that can support future conversion and cathode supply.

XTC New Energy LFP LMFP Capacity Expansion Targets Higher-Density Battery Materials

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XTC New Energy LFP LMFP Capacity Expansion Targets Higher-Density Battery Materials
XTC New Energy

XTC New Energy LFP LMFP capacity will expand in Sichuan as the Chinese battery materials producer adds another 40,000 t/yr of lithium iron phosphate and lithium ferro-manganese phosphate production. The second-phase project will be built in Ya’an city and is expected to start production in June 2028.

XTC New Energy LFP LMFP capacity at the Ya’an plant will reach 80,000 t/yr after both phases are completed. The first phase already provides 40,000 t/yr of LFP capacity, while the new phase will add flexible LFP and LMFP output.

XTC New Energy LFP LMFP capacity expansion reflects China’s continued investment in lower-cost and manganese-enhanced battery chemistries. The project will be operated by subsidiary Ya’an XTC New Energy, with total investment expected at 743mn yuan.

The move comes as Chinese battery material producers position for growing power battery demand and greater interest in manganese-based cathode active materials.

LMFP Gains Momentum as Producers Seek Better Energy Density

LMFP is gaining attention because it can offer higher energy density than conventional LFP. This makes it attractive for battery makers seeking to improve driving range while keeping costs below higher-nickel chemistries.

However, LMFP still faces trade-offs. Batteries using LMFP cathode active material generally have shorter cycle life and lower charge-discharge efficiency than LFP batteries.

This means LMFP is not a simple replacement for LFP. Instead, it is likely to develop as a complementary chemistry for applications where higher energy density is more valuable than maximum cycle life.

The expansion also shows how manganese is becoming more important in battery materials. Manganese-based chemistries can reduce reliance on more expensive or supply-sensitive metals while supporting performance improvements.

For XTC, adding LMFP capacity gives the company more flexibility. It can serve established LFP demand while preparing for customers that want manganese-enhanced phosphate materials.

China’s Cathode Supply Chain Expands Into Manganese-Based Materials

XTC is not alone in expanding LMFP capacity. Several Chinese battery material producers are adding or building manganese-based phosphate projects.

Ningxia Hengchuang Nami began building the first phase of a 30,000 t/yr LMFP plant in Yinchuan in March. Hunan Yuneng, China’s largest LFP producer, is also building an LMFP materials plant.

Jiangxi Greatpower launched the first phase of a 20,000 t/yr LMFP plant in Pingxiang in January. These projects show that China’s battery materials industry is preparing for broader adoption of LMFP.

The trend is strategically important for the cathode supply chain. LFP has already become a major chemistry in electric vehicles and energy storage because of its cost advantage, safety and long cycle life.

LMFP could extend that platform by adding more energy density while preserving some of LFP’s cost and safety benefits. If technical limitations improve, LMFP may become a larger part of China’s battery chemistry mix.

For raw materials, the shift could support manganese demand in battery applications. It also reinforces China’s lead in scaling new cathode chemistries from pilot production to industrial capacity.

The Metalnomist Commentary

XTC’s Ya’an expansion shows that China’s battery materials race is moving beyond simple LFP scale. LMFP is becoming a serious development path because it offers a practical route to higher energy density without fully moving into costlier high-nickel systems.

China's LMFP Battery Plant Boosts Cathode Material Market

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China's LMFP Battery Plant Boosts Cathode Material Market
Battery LFP

China’s LMFP battery materials sector takes a leap forward with Shanxi Tewashi’s 100,000 t/yr plant launch.

China’s Shanxi Tewashi Energy has officially started production at its new 100,000 t/yr lithium ferro-manganese phosphate (LMFP) cathode material plant. Located in Changzhi city, the facility is equipped with 16 fully automated production lines and marks a major investment in next-generation lithium-ion battery technology. The company, formed in late 2023, is a joint venture between Qianyun High-tech Energy and state-owned Shanxi Changgao Zhihui Group.

This launch further underscores China’s strategic focus on expanding domestic LMFP output. LMFP cathode materials offer higher energy density and lower costs compared to traditional lithium iron phosphate (LFP), making them attractive for electric vehicles. However, market analysts note that LMFP’s shorter cycle life and reduced discharge performance remain challenges for widespread adoption. Nevertheless, Chinese firms are doubling down on development. Major players like Hunan Yuneng and Ningbo Ronbay are building large-scale LMFP facilities to capture future market share.

The push into LMFP reflects China’s evolving battery supply chain strategy. As battery manufacturers aim to improve performance and reduce reliance on critical raw materials like nickel and cobalt, LMFP offers a viable alternative. With new LMFP projects launching across Shanxi, Hubei, and Gansu provinces, China is positioning itself as the global leader in diversified cathode active materials. The ramp-up of LMFP output may also influence global pricing dynamics for both LFP and emerging sodium-ion chemistries.

The Metalnomist Commentary

China's aggressive expansion of LMFP cathode production signals a pivot toward alternative battery chemistries. As the global EV sector seeks higher energy density at lower cost, Chinese manufacturers are racing to commercialize LMFP at scale—potentially reshaping the future of EV battery composition.

Gotion Slovakia battery plant anchors new EU battery supply hub

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Gotion Slovakia battery plant anchors new EU battery supply hub
Gotion Slovakia battery plant

Gotion Slovakia battery plant construction has begun, marking a major step in Europe’s race for local EV cell capacity. The Gotion Slovakia battery plant will be the country’s first gigafactory and a key node in China–EU battery supply chains. As a result, the Gotion Slovakia battery plant positions Slovakia as a new player in Europe’s electrification map.

Gotion Slovakia battery plant targets EU gigafactory scale

The first phase of the Gotion Slovakia battery plant will add 20GWh a year of lithium-ion capacity. Gotion plans pilot production in 2026, with commercial volumes starting in 2027 and feeding customers across EU markets. This timing aligns with accelerating European EV and energy storage demand, as automakers seek diversified cell suppliers.

Meanwhile, the Surany facility will be Slovakia’s first battery gigafactory, strengthening Central Europe’s role as an automotive manufacturing corridor. Products will likely support both passenger EVs and stationary storage, given Gotion’s broad lithium-ion portfolio. Therefore, OEMs and Tier-1 suppliers in the EU gain another large-scale, non-European cell source inside the single market.

Chinese battery makers accelerate overseas footprint

Gotion has rapidly expanded outside China, with projects in Morocco, Thailand, Japan and the US adding to 20 global plants. The company targets 300GWh a year of installed capacity by 2025, including 100GWh outside China, to serve regionalised EV supply chains. However, its planned Michigan cathode and anode plant was cancelled after policy disagreements with local authorities.

As a result, Europe and emerging markets now absorb more of Gotion’s outbound investment as geopolitical trade risks rise. Chinese battery makers are building overseas to diversify customers, reduce tariff exposure and align with “local-for-local” industrial policies. These projects also hedge against potential future export controls on advanced battery materials and equipment.

Export controls delayed but policy risk remains

China has postponed planned export restrictions on certain high-end lithium batteries, key equipment, cathode materials and artificial graphite. The one-year delay followed talks between Xi Jinping and Donald Trump and removes an immediate brake on Chinese firms’ overseas expansion. However, the episode underscores how quickly regulation can reshape the global battery value chain.

In the near term, Gotion and its peers gain critical time to lock in projects and qualify products with Western OEMs. Longer term, governments may still tighten controls around strategic battery technologies and materials. Therefore, assets like the Gotion Slovakia battery plant will be increasingly valued for their on-shore, policy-resilient capacity.

The Metalnomist Commentary

Gotion’s Slovakia project is another sign that gigafactory competition is shifting from pure cost to geopolitical resilience. For European automakers, Chinese-backed plants inside the EU offer cost-effective capacity but deepen strategic interdependence. The next question is whether Brussels and national governments will pair such investments with stronger upstream and recycling policies to secure the full battery value chain.

Indonesia Battery Ecosystem Project Moves Forward With New Chinese Partnership

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Indonesia Battery Ecosystem Project Moves Forward With New Chinese Partnership
Aneka Tambang

The Indonesia battery ecosystem project is moving into a new phase with a fresh Chinese partnership. Antam, Industri Baterai Indonesia, and HYD Investment signed a framework agreement to develop an integrated battery ecosystem in Indonesia. This follows the exit of LG Energy Solution in 2025. As a result, the Indonesia battery ecosystem project remains alive and strategically important.

The change in partners matters because the project scale remains significant. Antam said the planned investment value is around $5-6 billion. A joint feasibility study will now define the next steps. Therefore, the Indonesia battery ecosystem project is shifting from partner transition into renewed execution planning.

HYD brings a strong industrial base to the table. The consortium includes Zhejiang Huayou Cobalt, EVE Energy, and Daaz Bara Lestari. That mix adds processing, battery, and investment capability. Consequently, the project gains a broader foundation across the battery value chain.

Indonesia Nickel Battery Chain Expands From Ore to Cells

The Indonesia nickel battery chain is central to this project’s logic. Planned facilities include an RKEF plant with 100,000 t/yr of nickel metal equivalent capacity. The project also includes an HPAL plant with 50,000 t/yr of nickel metal equivalent capacity. Therefore, upstream and midstream nickel conversion remain core pillars.

The downstream ambition is equally important. The project is expected to produce 105,000 t/yr of precursors and 30,000 t/yr of cathode materials. It also aims to build 20 GWh per year of nickel-based battery capacity. As a result, the Indonesia battery ecosystem project goes well beyond raw material processing.

Battery recycling also appears in the plan. The proposed recycling capacity is capped at 10,000 t/yr. That addition supports a more circular industrial model. Meanwhile, Antam will supply the nickel ore required for the project.

Antam Battery Project Reinforces Indonesia’s Downstream Strategy

The Antam battery project fits directly into Indonesia’s long-term downstream policy. Jakarta wants to build a local battery industry from mining to refining to final battery production. This new agreement supports that goal with another large integrated platform. Therefore, the project has national strategic value, not just commercial relevance.

This also shows Indonesia’s flexibility in partner management. LGES may have exited, but the broader industrial objective did not disappear. Instead, the project has been restructured around a new consortium. As a result, Indonesia continues pushing its battery ambitions despite partner turnover.

Antam’s role is becoming even more central. The company is involved in this project and also has a separate EV battery joint venture with CATL. That CATL-linked venture is expected to start operations by 2026. Consequently, Antam is emerging as one of the key anchors in Indonesia’s nickel battery chain.

The Metalnomist Commentary

This partnership matters because it shows Indonesia’s battery strategy is bigger than any one foreign partner. The country is still determined to convert nickel strength into downstream battery power. If execution improves, Indonesia could become one of the most integrated battery manufacturing hubs outside China.

Japan EU battery recycling alliance aims to cut China dependence

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Japan EU battery recycling alliance aims to cut China dependence
Japan, EU battery alliance

Japan EU battery recycling alliance marks a strategic push to reduce reliance on China in battery materials. The new Japan EU battery recycling alliance brings together key industry groups to strengthen recycling, black mass handling and data sharing. As a result, the Japan EU battery recycling alliance targets a more resilient and transparent battery supply chain across both regions.

Japan EU battery recycling alliance links tech strength and market scale

The Japan EU battery recycling alliance is built around three core industry associations. Japan’s Battery Association for Supply Chain, the European Battery Alliance and Brussels based Recharge have signed an initial agreement. Together, they will cooperate on improving recycling processes, materials flows and supply chain governance.

The agreement covers information exchange on issues such as data sharing and regulatory interpretation. It also includes joint studies on black mass classification, a key bottleneck for cross border recycling flows. Black mass refers to shredded cathode material containing nickel, cobalt and lithium from spent batteries. Therefore, clear definitions and standards for black mass are critical for trade, permitting and ESG compliance.

Japanese officials highlight the importance of combining Japan’s technology strength with Europe’s market size. Japan offers advanced recycling technologies and process know how developed over decades of battery manufacturing. Meanwhile, Europe provides a rapidly growing battery market driven by EV mandates and energy storage deployment. This mix gives the Japan EU battery recycling alliance strong industrial foundations.

Reducing strategic exposure to China dominated battery materials

The Japan EU battery recycling alliance clearly responds to geopolitical supply concerns. Officials from Japan’s trade and industry ministry note that the current battery supply chain depends heavily on one country. Although unnamed, the reference clearly points to China’s dominance in processed lithium, nickel, cobalt and anode materials.

By deepening cooperation, Tokyo and Brussels aim to reduce vulnerability to export controls or political friction. Recycling and black mass trade can partially offset primary supply risks from Chinese refineries and processors. In addition, improved data sharing should help track origin, quality and ESG performance of recovered materials. As a result, the Japan EU battery recycling alliance supports compliance with emerging battery passport and due diligence rules.

The initiative also fits within the broader Japan EU competitiveness alliance launched in July. That framework seeks closer coordination on semiconductors, clean energy, critical minerals and industrial standards. Battery recycling now becomes a visible test case for how quickly the partnership can move from statements to practical projects.

The Metalnomist Commentary

This partnership underlines how recycling is moving from a niche activity to a core pillar of battery security strategy. If the Japan EU battery recycling alliance can harmonise black mass standards and data systems, it will lower barriers for serious cross regional recycling investment. Market participants should watch for pilot projects, joint ventures and regulatory tweaks that follow this initial, largely framework level agreement.

ICL and Dynanonic Partner to Boost LFP Cathode Production in Europe

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BMW

Israeli specialty minerals company ICL and Chinese battery cathode producer Shenzhen Dynanonic have formed a joint venture to manufacture lithium iron phosphate (LFP) cathode active material (CAM) in Europe. This collaboration aims to enhance the region’s battery supply chain and support the growing demand for EV and energy storage solutions.

Repurposing the Sallent Site for LFP Production

ICL has repurposed its Sallent site in Spain, previously used for potash production, to develop the new LFP cathode production facility. The joint venture represents a strategic shift towards sustainable battery materials. The companies will initially invest €285 million ($293 million), with ICL holding an 80% stake and Dynanonic the remaining 20%.

Strengthening Europe’s Battery Supply Chain

The new LFP facility will boost Europe's domestic production of battery materials, reducing reliance on Asian imports. The demand for LFP cathodes has surged due to their cost-effectiveness, safety advantages, and long cycle life compared to nickel-manganese-cobalt (NMC) alternatives. The European EV market and energy storage sectors will directly benefit from this development.

ICL and Dynanonic’s Strategic Vision

By leveraging ICL’s European presence and Dynanonic’s expertise in LFP cathode technology, the joint venture positions itself as a key player in the battery materials industry. This investment aligns with Europe’s push for battery independence and sustainable energy solutions.

Ronbay Boosts 3Q Battery Cathode Active Material Sales Amid Rising EV Demand

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Ronbay

Ningbo Ronbay, a leading Chinese manufacturer of battery cathode active materials (CAM), has reported a significant increase in sales for the third quarter of 2023, driven by surging demand from the electric vehicle (EV) sector. Ronbay’s strong performance was reflected in a 27% increase in ternary CAM sales compared to the same period last year, reaching over 35,000 tons. The company’s market share in the global CAM market now stands at 14.4%, up by four percentage points from the previous quarter, solidifying its position as the market leader since 2022.

Record Sales and Expansion of Ultra-High Nickel CAMs

In the first three quarters of 2023, Ronbay’s sales of ultra-high nickel CAMs surpassed 20,000 tons, highlighting the growing demand for high-energy-density batteries used in EVs and advanced battery technologies. The company's overseas shipments of all ternary CAMs reached nearly 15,000 tons, further underscoring its strong international presence.

Ronbay also saw a significant boost in its sales of battery precursors, which rose by 69% from the previous quarter to nearly 10,000 tons in the third quarter. These precursors are essential for the production of high-performance cathode materials used in lithium-ion batteries.

R&D Investment and Expansion Plans

To support its continued growth, Ronbay has significantly increased its research and development expenditure, up by 41% year-on-year, reaching 312 million yuan ($43.8 million) in the first nine months of 2023. This investment is aimed at ensuring steady shipments of ultra-high nickel CAMs, which are critical for the development of semi-solid state batteries and solid-state batteries. Ronbay has already secured certification for its ultra-high nickel CAMs from several domestic and international customers.

International Expansion and Future Prospects

In line with its growth strategy, Ronbay has been expanding its overseas production capacity. The first phase of its battery CAM project in South Korea is ramping up output, with a planned capacity of 20,000 tons per year. Additionally, the company is moving forward with the construction of the second phase, which will increase capacity to 40,000 tons per year to meet demand not only from South Korea but also from markets in Japan, Europe, and the US. Ronbay is also exploring the feasibility of a 20,000 tons per year plant in Poland and has established subsidiaries in the US to strengthen its global footprint.

By the end of 2023, Ronbay had expanded its total cathode material capacity to 200,000 tons per year, which includes 10,000 tons per year for lithium manganese iron phosphate (LMFP) and 20,000 tons per year in South Korea. This expansion positions Ronbay as a major player in the global battery materials market, particularly in the rapidly growing EV sector.

Jutai Nickel Cathode Production Adds Flexibility to China’s Downstream Nickel Chain

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Jutai Nickel Cathode Production Adds Flexibility to China’s Downstream Nickel Chain
Zhejiang Jutai Plant

Jutai nickel cathode production has started at Zhejiang Jutai’s integrated refinery in Zhoushan, adding new capacity to China’s fast-expanding downstream nickel processing sector. The facility has 30,000 t/yr of nickel cathode capacity and can use mixed hydroxide precipitate or nickel matte as feedstock.

Jutai nickel cathode production strengthens the company’s ability to respond to changing nickel market conditions. The same Zhoushan site also hosts a 100,000 t/yr nickel sulphate project that was commissioned in October 2025, giving the complex around 55,000 t/yr of nickel capacity on a metal equivalent basis.

The new operation matters because China is rapidly converting imported nickel intermediates into higher-value products. Jutai nickel cathode production shows how MHP and matte supply are reshaping the country’s refining system beyond battery chemicals alone.

MHP and Matte Supply Drive New Refining Capacity

Nickel intermediates are becoming the foundation of China’s new nickel processing model. Growing supplies of MHP and nickel matte allow refiners to produce nickel sulphate, nickel cathode, and other downstream products depending on margins and customer demand.

Zhejiang Jutai’s Zhoushan complex reflects this flexible approach. The company can switch between nickel sulphate and nickel cathode output, which gives it commercial optionality across battery materials and refined metal markets. This flexibility is important when nickel prices, sulphate demand, and stainless steel-linked sentiment move in different directions.

The development also shows how China continues to capture value from Indonesia-linked nickel flows. As MHP and matte availability expands, Chinese refiners can build more diversified processing routes and strengthen their role in the global nickel value chain.

China Nickel Cathode Output Continues to Expand

China’s nickel cathode production reached 415,000t in 2025, up 24pc from the previous year. Output is expected to keep rising in 2026 as new capacity starts up, existing plants expand, and firmer nickel prices improve production economics.

Higher LME nickel prices are also supporting the sector. The average LME cash price reached $15,150/t in 2025, while the year-to-date average climbed to $17,482/t by late February, driven partly by reduced Indonesian nickel ore supply.

Shaanxi Jutai, Zhejiang Jutai’s parent company, already has experience in battery material production. Its Xi’an complex began producing nickel sulphate in 2018 and also produces cobalt sulphate, manganese sulphate, vanadium pentoxide, and molybdenum products. This gives the group a broader platform across strategic metals used in batteries, alloys, and industrial materials.

The Metalnomist Commentary

Jutai’s Zhoushan project highlights China’s strength in processing flexibility. The country is not only adding nickel capacity; it is building assets that can shift between battery chemicals and refined metal as market conditions change.

Vulcan Lithium Hydroxide Project Advances as German Construction Begins

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Vulcan Lithium Hydroxide Project Advances as German Construction Begins
Vulcan Lithium

Vulcan lithium hydroxide project development has moved into major construction in Germany, marking a key step for Europe’s domestic battery materials supply chain. Australian-listed Vulcan Energy has started building its 24,000 t/yr Lionheart lithium hydroxide project in the German state of Hesse.

The Vulcan lithium hydroxide project is scheduled to produce first output in 2028. The construction start follows Vulcan’s receipt of a six-year commercial production licence for the facility in March.

The Vulcan lithium hydroxide project is strategically important because Europe remains heavily dependent on imported lithium chemicals for battery manufacturing. Local lithium hydroxide production could support electric vehicle, battery cell and cathode supply chains across the region.

Vulcan plans to produce battery-quality lithium from low-impurity geothermal subsurface brines. The company will use direct lithium extraction technology, linking lithium production with geothermal resource development in the Upper Rhine Valley.

Geothermal Brines Support Europe’s Local Lithium Strategy

The Lionheart project is part of Europe’s broader effort to build domestic critical minerals capacity. Lithium hydroxide is a key input for high-nickel cathode chemistries used in electric vehicle batteries.

Vulcan’s route is different from conventional hard-rock lithium mining or evaporation pond production. The company plans to extract lithium from geothermal brines, then process it into battery-quality lithium hydroxide.

This matters because direct lithium extraction can reduce land use and accelerate processing compared with traditional evaporation routes. However, DLE projects still face technical and commercial execution risk because each brine system has different chemistry and operating requirements.

Construction of the surface extraction plant at Landau in the Upper Rhine Valley began in February. This upstream extraction work is critical because the lithium hydroxide plant depends on reliable brine supply and stable lithium recovery.

The project’s low-impurity geothermal brine base could give Vulcan a useful advantage if it can scale the process reliably. Battery customers require consistent quality, traceability and long-term supply security.

Public Funding Highlights Strategic Battery Materials Push

The Lionheart project received around €104mn in funding from Germany’s federal government and the states of Rhineland-Palatinate and Hesse last year. This public support shows how lithium processing has become an industrial policy priority in Europe.

Germany has a major automotive industry and is expanding battery manufacturing capacity. Domestic lithium hydroxide production could reduce exposure to overseas conversion hubs and strengthen regional supply resilience.

The project also fits Europe’s push to localise more of the battery value chain. Mining or extraction alone is not enough. Europe needs lithium chemicals, cathode materials, battery cells, recycling and downstream qualification with automakers.

Vulcan’s 24,000 t/yr planned capacity would not satisfy Europe’s full lithium demand. However, it could become a meaningful regional source if production starts as planned in 2028.

The next challenge is execution. Vulcan must complete construction, prove DLE performance, operate the geothermal brine system and qualify lithium hydroxide with battery customers.

The Metalnomist Commentary

Vulcan’s construction start shows that Europe’s battery supply-chain strategy is moving from policy ambition to industrial buildout. The project’s success will depend on whether geothermal brine extraction and lithium hydroxide conversion can scale reliably enough to meet automotive-grade standards.

Ascend Elements Bankruptcy Exposes Pressure in Battery Recycling Market

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Ascend Elements Bankruptcy Exposes Pressure in Battery Recycling Market
Ascend Elements

Ascend Elements bankruptcy filing shows how difficult the battery recycling business has become as electric vehicle adoption slows in the US and Europe. The US battery recycler has filed for Chapter 11 bankruptcy and will use the court-supervised process to restructure liabilities while continuing normal operations.

Ascend Elements bankruptcy comes despite major commercial and government-backed support. The company said it had secured more than $2bn in commercial agreements and a $320mn grant from Poland, but these were not enough to overcome longstanding financial issues and outstanding liabilities.

The filing highlights a broader weakness in the battery recycling sector. Recyclers need steady end-of-life battery and production scrap feedstock, but slower EV growth has limited available material and made it harder to sell recovered products into battery supply chains.

Funding and Offtake Deals Failed to Offset Financial Pressure

Ascend had previously planned to develop cathode active material production in Hopkinsville, Kentucky. However, the company and the US Department of Energy agreed in March 2025 to cancel a $164mn grant for that project.

The company later received a $320mn grant from Poland in May 2025 to build a precursor cathode active material plant. That support showed continued policy interest in battery materials localization, especially in Europe.

Ascend also signed a five-year offtake agreement to supply Trafigura with 15,000t of lithium carbonate from 2027 to 2031. The agreement gave the company a future sales channel, but it did not solve its immediate balance-sheet pressure.

Slower EV Growth Weakens Recycling Economics

Ascend Elements bankruptcy reflects the timing problem facing battery recyclers. Many business models were built around rapid EV growth, rising battery scrap availability and strong demand for recycled lithium, nickel, cobalt and cathode materials.

But slower EV adoption has delayed feedstock growth and reduced market confidence. Without sufficient input material and reliable downstream demand, recyclers can struggle to operate at the scale needed to justify large processing and materials investments.

The pressure is not limited to Ascend. Texas-based recycler Ecobat is selling assets in the UK, France, Italy, Germany and Austria to focus on North America, showing that consolidation and retrenchment are spreading across the sector.


The Metalnomist Commentary

Ascend Elements bankruptcy shows that battery recycling is strategically important but commercially unforgiving. The winners will be companies with secured feedstock, disciplined capital spending and customers ready to buy recycled battery materials at scale.

Shidai Ruixiang Launches LMFP Battery Material Plant in Gansu

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Shidai Ruixiang Launches LMFP Battery Material Plant in Gansu
Baiyin Nonferrous Group

China’s Shidai Ruixiang has launched a new LMFP battery material plant with a production capacity of 20,000 tonnes per year. Located in Baiyin city, Gansu province, this marks the first phase of what will become the world’s largest LMFP facility. Once complete, the site will scale to 100,000 t/yr in lithium ferro-manganese phosphate production for next-generation EV battery applications.

The LMFP battery material plant is operated by Shidai Ruixiang, a joint venture between Gansu Elephent Energy and Baiyin Nonferrous Group, a major Chinese state-owned metals producer. The full project will be developed in three phases, although details for the next stages remain undisclosed. This launch reinforces China’s dominant position in advanced battery cathode material (CAM) supply chains.

China Expands LMFP Footprint in Global EV Market

LMFP materials offer higher energy density and longer driving range than traditional LFP cathodes, while keeping manufacturing costs low. However, they have shorter life cycles and reduced charge-discharge capacity, making them more suitable for mid-range EVs or power tools. Despite this, China’s battery sector is accelerating investment in LMFP research and production.

Other major CAM players such as Hunan Yuneng and Ningbo Ronbay are also expanding LMFP production. Ronbay announced a dual LMFP and sodium-ion CAM plant in Xiantao, Hubei, while Yuneng is constructing a dedicated LMFP facility. These efforts position LMFP as a potential mainstream solution for future battery platforms balancing cost, safety, and range.

Strategic Role of State-Backed Metals Companies in CAM Expansion

The Shidai Ruixiang LMFP battery material plant highlights growing integration between state-backed metals enterprises and energy storage innovation. Baiyin Nonferrous brings decades of expertise in copper and zinc processing—critical metals for battery infrastructure—into the cathode materials space. The partnership reflects China's strategy to leverage existing industrial assets for clean tech scalability.

As battery chemistries diversify in response to cost and performance demands, China’s control over both upstream raw materials and downstream manufacturing provides a distinct competitive edge in the global energy transition economy.


The Metalnomist Commentary

The LMFP battery material plant in Gansu represents a strategic shift toward diversified CAM solutions for scalable EV deployment. As Chinese producers push LMFP into the mainstream, global automakers and battery buyers will need to weigh performance trade-offs against cost and availability.

China Battery Overcapacity Crackdown Targets Price Wars and Overseas Expansion

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China Battery Overcapacity Crackdown Targets Price Wars and Overseas Expansion
China Battery

China battery overcapacity concerns deepened after government authorities held another meeting with leading power and energy storage battery producers on 9 April. The meeting signalled stronger regulatory pressure on disorderly competition, low-price strategies and excessive capacity expansion in the lithium battery sector.

The meeting brought together 16 major battery producers and several industry associations. It was the second such regulatory session since January, showing that Beijing sees battery overcapacity as a structural industrial risk rather than a short-term market adjustment.

China battery overcapacity has grown as domestic and overseas capacity plans have moved far ahead of actual demand. Regulators are now seeking capacity early-warning mechanisms, stronger market-order controls and tighter oversight of aggressive price competition.

Regulators Target Involution-Style Competition

Chinese authorities said the meeting aimed to implement senior government directives against “involution-style” competition. This term refers to excessive internal rivalry that destroys margins, weakens investment discipline and creates unsustainable price wars.

Regulators also discussed a negative list of irrational competitive practices in the power and energy storage battery industry. This would give authorities a clearer tool to identify and restrict behaviour that destabilises the market.

The new focus on the “externalisation of involution” is especially important. It shows that Beijing is now concerned not only about domestic overcapacity, but also about excessive overseas expansion by Chinese battery producers.

Chinese battery companies have accelerated global plant construction to serve overseas demand and reduce exposure to geopolitical restrictions. But if too much capacity is exported abroad, price pressure could spread into global power battery and energy storage markets.

Capacity Mismatch Creates Pressure Across Battery Materials

China’s power and energy storage battery output reached 1,755.6GWh in 2025, up 60.1% from a year earlier. Sales rose by 63.6% to 1,700.5GWh, confirming strong demand growth but also exposing the scale of capacity pressure.

Planned national capacity has climbed close to 5,000GWh. That implies utilisation rates below 40%, which helps explain why regulators are concerned about price wars and weak production discipline.

The issue also matters for battery materials. Overcapacity can pressure cathode active materials, precursors, lithium carbonate, graphite, copper foil, separators and electrolytes if producers chase volumes rather than margins.

Chinese battery firms are also becoming more important abroad. CATL, BYD, Gotion High-Tech, Farasis Energy, SVOLT Energy and CALB recorded 218GWh of overseas power battery installations in 2025, accounting for 47.2% of the global market.

The Metalnomist Commentary

China’s battery crackdown shows that scale alone is no longer enough. The next phase of battery competition will reward disciplined capacity, stronger technology, regional supply-chain positioning and healthier margins over pure volume growth.

Honda Ontario EV Plan Suspended Amid Slower Market Growth Projections

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Honda Ontario EV Plan Suspended Amid Slower Market Growth Projections
Honda EV

Honda suspended its ambitious C$15 billion ($10.7 billion) Honda Ontario EV plan to build a comprehensive electric vehicle value chain in Canada. Chief Executive Toshihiro Mibe announced the two-year delay during the company's first-quarter earnings presentation, citing slower-than-expected EV market growth. The Honda Ontario EV plan postponement represents a significant setback for Canada's battery materials supply chain development and critical mineral processing ambitions.

Comprehensive Battery Supply Chain Project Faces Market Reality

The Honda Ontario EV plan encompassed a complete electric vehicle manufacturing ecosystem in Alliston, Ontario, including an EV assembly plant and standalone battery manufacturing facility. Honda partnered with Posco Future M to develop cathode and precursor materials facilities while collaborating with Asahi Kasei on separator plant construction. Meanwhile, this integrated approach aimed to reduce supply chain dependencies while supporting Honda's goal of 100% battery and fuel cell EV sales by 2040.

The comprehensive nature of the Honda Ontario EV plan positioned Canada as a strategic hub for North American electric vehicle production. Honda's investment would have created substantial demand for Canadian critical minerals, particularly lithium, nickel, and cobalt for battery cathode materials. However, slower market adoption rates have forced automakers to reassess their aggressive electrification timelines and associated capital investments.

Critical Mineral Processing Ambitions Face Automotive Headwinds

Canada's strategy to capture value from its abundant critical mineral resources through downstream processing suffers a major blow from the Honda Ontario EV plan suspension. The project represented a key opportunity to establish domestic battery materials manufacturing capabilities using Canadian lithium, nickel, and graphite resources. As a result, the delay undermines government efforts to build integrated critical mineral supply chains within North America.

Posco Future M's planned cathode and precursor facilities would have processed Canadian-sourced critical minerals into high-value battery materials for Honda's EV production. The partnership promised technology transfer and manufacturing expertise to establish Canada's position in global battery supply chains. Therefore, the Honda Ontario EV plan postponement reduces near-term demand prospects for Canadian critical mineral producers seeking domestic processing partnerships.

The two-year delay reflects broader challenges facing automaker electrification strategies as consumer adoption lags initial projections. Honda joins other manufacturers reassessing EV investment timelines amid market uncertainty and profitability concerns. Consequently, critical mineral demand growth may moderate as automakers adjust production capacity plans to match actual market conditions.

The Metalnomist Commentary

Honda's decision to pause its massive Ontario investment reflects the gap between aggressive EV transition rhetoric and market reality, highlighting risks for critical mineral producers banking on rapid battery demand growth. This setback underscores the importance of diversified demand strategies for Canadian critical mineral projects, as automotive electrification timelines prove more volatile than anticipated across the industry.

Yuneng to Expand LFP and LMFP Cathode Capacity to Meet Battery Market Growth

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Yuneng to Expand LFP and LMFP Cathode Capacity to Meet Battery Market Growth
Yuneng

$899 Million Investment Targets Higher Energy Density Materials

Hunan Yuneng, China’s largest lithium iron phosphate (LFP) cathode active material producer, will significantly expand production capacity to serve surging demand in the lithium-ion battery sector. The company plans to raise 4.8bn yuan ($899mn) for a new project producing 320,000 t/yr of lithium manganese iron phosphate (LMFP), 75,000 t/yr of ultra-long cycle LFP, and 100,000 t/yr of iron phosphate feedstock.

The LMFP line, located in Anning, Yunnan province, will also be able to produce LFP. Yuneng expects construction to finish within four years. Meanwhile, the ultra-long cycle LFP and iron phosphate plants in Fuquan, Guizhou province, will be built within 12 months, strengthening the company’s diversified product portfolio.

Performance Advantages and Market Competition

LMFP cathodes provide higher energy density, longer driving ranges for EVs, better winter performance, and lower manufacturing costs than standard LFP. However, they have shorter life cycles and weaker charge-discharge capacity. Major players such as CATL, BYD, and Eve Energy are also investing in LMFP technology, intensifying competition in the high-performance cathode market.

Yuneng achieved 101% LFP capacity utilization in 2024, producing 735,462t—up 46% from 2023. Sales reached 710,565t, with 41% directed to the energy storage sector. LFP batteries continue to dominate China’s lithium-ion battery market, holding an 80% production share from January to April 2024, far exceeding the share of ternary chemistries such as NCA/NCM.

Strategic Outlook for Cathode Materials Expansion

By expanding LFP and LMFP output, Yuneng positions itself to capture additional market share as both EV adoption and energy storage demand accelerate. The cost advantage of LFP remains a key factor in China’s battery market dominance, while LMFP technology offers potential for premium applications once lifecycle limitations are addressed.

The Metalnomist Commentary

Yuneng’s investment demonstrates how Chinese cathode producers are racing to scale capacity in response to both domestic and global demand. While LFP will remain the dominant chemistry in China’s battery market, LMFP could emerge as a niche solution for applications requiring higher energy density—if manufacturers can resolve its durability challenges.

LME Copper Cathode Supply Could Rise as Chinese Smelters Push EQ Listings

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LME Copper Cathode Supply Could Rise as Chinese Smelters Push EQ Listings
Chinese Copper

LME copper cathode supply could increase as more Chinese smelters seek to register equivalent quality cathodes on the London Metal Exchange. The move reflects a push to capture higher premiums for material that is close to LME-registered brands in quality.

The near-term impact on LME copper cathode supply is likely to be limited. However, more registrations could gradually widen deliverable copper availability and give buyers more alternatives to traditional registered cathode brands.

Chinese smelters are targeting the premium gap between EQ cathode and fully registered material. African-origin registered copper usually earns a higher premium than EQ cathode, but it still trades below Chilean registered brands because many African cathodes are solvent-extraction and electrowinning products with slightly higher impurity levels.

DRC Cathode Listings Expand China-Linked LME Supply

The London Metal Exchange recently approved China Nonferrous Mining’s SMD copper cathode brand for listing. The brand is produced at the Deziwa project in the Democratic Republic of Congo, which has copper cathode capacity of 80,000 t/yr.

The Deziwa project is jointly owned by CNMC and the DRC’s state-owned mining company. It hosts 4.6mn t of copper metal resources and 420,000t of cobalt metal resources, giving it strategic value across both copper and battery metal supply chains.

CNMC’s production profile also shows a shift toward more refined copper output. The group produced 130,232t of copper cathode in 2025, up 3% from a year earlier, while copper blister output fell by 33% to 192,266t.

The LME has also approved CMOC’s TFM 1 copper cathode brand for listing. That brand is produced at Tenke Fungurume in the DRC, reinforcing the country’s growing role in exchange-deliverable copper supply.

Premium Strategy Could Reshape Refined Copper Trade Flows

LME copper cathode supply strategy is becoming more important as Chinese-linked producers look to improve market access and price realisation. Listing cathode brands can improve buyer acceptance, increase liquidity and narrow discounts against established registered brands.

The DRC is already China’s largest source of copper cathode imports. China imported 1.44mn t of copper cathode from the DRC in 2025, equal to 37.6% of total imports.

More LME-approved DRC brands could change how buyers view African cathode. If quality, documentation and deliverability improve, some buyers may become less dependent on higher-premium registered material from other origins.

Still, the immediate effect should remain modest. LME registration does not automatically mean large volumes will flow onto warrant, but it does increase optionality for producers, traders and consumers in a market where brand status affects pricing power.

The Metalnomist Commentary

The Chinese EQ cathode push shows that copper competition is moving into brand approval, deliverability and premium capture. The bigger implication is that DRC copper is becoming not only a Chinese import source, but a growing part of the LME-recognised refined copper system.