Rechargion manufactures sodium-ion cells from local Indian materials
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Rechargion manufactures sodium-ion cells from local Indian materials

The battery problem in India is not about demand, but that almost all installed lithium cells are imported along with their cathodes, anodes, and electrolytes. Raw materials are concentrated in several countries, none of which is India, and prices are set abroad.

Sodium is considered an obvious alternative. It is located directly below lithium in the periodic table and is sufficiently similar in properties to work in a battery; it is abundant, and other necessary components for a sodium-ion cell are available domestically and are inexpensive. However, there has always been a performance issue: sodium ions are larger and heavier, so the cells store less energy relative to their weight.

Rechargion, founded in Pune in 2021 by Vilas Shelke and Manjusha Shelke (the latter is a principal scientist at the CSIR National Chemical Laboratory), is officially based on the research of the Shelke group. The company's activities are focused on materials rather than the cell design itself.

The company has patented solid carbon, which serves as the anode material through which sodium ions move, and has also developed its own electrode materials and sodium compounds. Furthermore, it uses polymer as an anode material, which, according to them, makes the cells commercially viable.

The commercial appeal is due to the cost and availability of raw materials. All necessary materials are available domestically and are significantly cheaper than lithium counterparts, while the cells do not contain cobalt or nickel. In 2023, the company projected a cost of 11–12 rupees per watt-hour with a service life of 12 to 15 years.

Safety is another argument, as the chemistry of sodium-ion batteries has a clear advantage. A sodium cell can be discharged to zero volts for transport without damage, which cannot be done with a lithium cell, and this chemistry is less prone to thermal runaway.

The applications demonstrated by the company range from solar energy storage, shown to the team of the United Nations Industrial Development Organization, to use in sodium-ion-based bicycles and drones. Rechargion has built what it calls the first pilot plant in India for manufacturing sodium-ion cells.

In August 2025, the Automotive Research Association of India conducted a two-month evaluation of Rechargion's cells at its facility in Chakan, testing them according to the IEC 62660 protocol. The tests covered vibration, mechanical shock, crushing, high-temperature thermal resistance, short circuit, overcharging, and forced discharge.

The ARAI director handed the validation report to the founders. The company claims that this makes it the first in India to meet the IEC 62660 standard for sodium-ion batteries. Independent testing by a national accreditation body is more substantial evidence than most battery claims.

The company received support through governmental and developmental channels, not venture capital: the Ministry of Heavy Industries through the ARAI-AMTIF accelerator, UNIDO, the US-India Science and Technology Foundation, Social Alpha, and the NCL Venture Center. The volume of funding was not disclosed.

The company is setting up the facility to produce 500 cells per day, which is a step towards production. Information regarding customers, orders, or revenue is not publicly available.

Five hundred cells per day is a small number compared to the scale of Indian demand, but a more complex challenge in cell manufacturing is stability, not volume, which is what the pilot line ensures.

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Transforming Battery Waste into Strategic Resources: A New Opportunity for India's Industry
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Transforming Battery Waste into Strategic Resources: A New Opportunity for India's Industry

An electric scooter battery lasts for about five years, providing daily rides. However, when the battery's health drops below 70%, most people consider it ordinary trash. Industry, on the other hand, sees it as a treasure trove of critical minerals. Currently, a spent battery ceases to be just an automotive component and becomes part of a grand industrial transition.

As the adoption of electric vehicles accelerates in the country, the fate of these batteries will determine whether India becomes a self-sufficient producer or replaces its dependence on crude oil imports with a dependence on critical mineral imports. India aims to achieve sales of 30 million electric vehicles by 2032. According to NITI Aayog estimates, approximately 128 GWh of battery waste will be generated in India by the end of the decade, with the electric vehicle segment accounting for nearly half of this volume. Thus, what appears to be waste is actually a concentrated urban mine.

End-of-life lithium-ion batteries contain all the necessary materials to create the next generation of energy storage systems. The projected 128 GWh of waste could potentially yield a colossal 17,500 tons of lithium, 22,600 tons of nickel, 2,600 tons of cobalt, and 141,800 tons of graphite.

For a country with limited domestic reserves, mining these minerals is a macroeconomic necessity. According to a Rocky Mountain Institute report, the battery circular economy represents a $9 billion market opportunity for India. By 2050, a robust domestic recycling infrastructure could meet over 40% of the country's domestic needs for lithium, nickel, and cobalt, protecting production from global commodity market volatility.

Extracting critical minerals is far more complex than simply dismantling a battery. Each battery varies in chemistry, design, physical condition, and residual charge, making safe handling the first engineering challenge. After controlled discharge, batteries are mechanically dismantled and crushed in a controlled environment to separate plastic, copper, and aluminum foil.

The result of the crushing process is a dark fine powder known as 'black mass,' which contains concentrated active metals driving the energy transition. Advanced purification methods allow for the extraction of lithium, nickel, cobalt, and graphite as metal or salts with a recovery efficiency exceeding 90%. Ultimately, the metals in the battery packs remain metals and can be transformed into various forms of these metals. Purified metals can be reused in various production streams, including batteries, through recycling.

The real economic value lies in recycling the black mass into metals or salts that industry can use, not in producing the black mass itself. Until recently, black mass was largely exported, effectively transferring significant value abroad. Domestic recycling retains value within the country's own production ecosystem and strengthens the battery manufacturing, chemical, and advanced materials industries.

Operating a recycling facility demonstrates that a metallurgical approach alone is insufficient for commercial success; process design is also crucial. Multi-stage chemical extraction technologies increase reagent consumption, waste generation, and operating costs. As Lithium Iron Phosphate (LFP) becomes the preferred chemistry, commercially viable recycling will depend on chemistry-agnostic technologies that simplify the process while operating efficiently at scale.

Despite technical success in recovering critical minerals, LFP batteries present a commercial challenge. Unlike premium Nickel-Manganese-Cobalt (NMC) batteries saturated with high-value metals, LFP batteries do not contain nickel or cobalt. Although lithium, iron, and phosphorus can be extracted, current raw material prices do not cover processing costs. The science of recycling is sound, but the economics can be harsh. If left entirely to the free market, recyclers will naturally favor NMC batteries and abandon LFP, leading to piles of untreated toxic waste.

To prevent LFP packs from becoming a devalued asset, the industry requires Viability Gap Funding (VGF) grants or chemistry-specific differentiated incentives to make processing low-value chemistries financially sustainable.

Securing feedstock is a huge hurdle. Approximately 70%–90% of India's battery waste disappears into the unregulated informal sector, where unsafe scavenging causes environmental damage and massive material loss. The Battery Waste Management Rules (BWMR) 2022 timely introduced Extended Producer Responsibility (EPR) to channel waste to recyclers, but compliance with these rules remains critical. Ensuring traceability throughout the entire life cycle of a battery until its decommissioning can guarantee that batteries remain within the formal circular economy.

Ultimately, transforming battery waste into strategic resources is the defining industrial challenge of the electric mobility era. Batteries are a source of raw materials underpinning India's transition to clean energy and its industrial competitiveness. By scaling up advanced purification, supporting economically challenging chemistries like LFP, and strengthening EPR compliance and battery traceability, battery recycling will evolve into a strategic industrial opportunity.

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