International Battery Metals Ltd. is trying to turn years of lithium-extraction engineering into something more valuable than promising laboratory data: repeatable commercial deployment. The TSXV-listed company said in its latest quarterly update that work with prospective customers is advancing in the United States, the Middle East and Argentina, with particular attention on opportunities in the lithium-rich Smackover Formation.
The Houston-based company has already operated its modular direct lithium extraction system in Utah and recently reported strong results from testing Smackover brines. Still, the next phase carries a higher bar. Commercial success will require more than high recovery rates. IBAT must secure customers, adapt its equipment to individual brines, finance deployment, integrate its process with downstream refining and demonstrate that the economics work through changing lithium-price cycles.
IBAT Says the Priority Is Moving Technology Back Into the Field
International Battery Metals reported its fiscal first-quarter 2027 results on August 13, covering the three months ended June 30, 2026. Management described its focus as moving from laboratory validation toward field execution. The company continued testing brines for potential customers while pursuing opportunities to deploy its existing modular DLE plant in the Smackover region and the Middle East. Argentina is another market where technical evaluations and commercial discussions are underway.
That language matters because IBAT is no longer trying simply to prove that lithium can be captured from brine. Its challenge is converting technical evaluations into definitive agreements and functioning projects. Interim CEO Garrett Galloway said the company had spent the previous period defining where its system fits within a complete lithium-production flowsheet. The commercial question is now whether resource owners see enough technical and economic value to commit capital and move from testing samples to installing equipment at operating sites.
The Technology Is Built Around a Modular Extraction System
IBAT’s approach is a form of direct lithium extraction, or DLE, using selective media housed inside extraction columns. Lithium-bearing brine passes through the system, where the media is designed to capture lithium while rejecting much of the unwanted material. The resulting lithium chloride solution can then move through additional processing to become lithium carbonate or lithium hydroxide suitable for battery and industrial applications. The depleted brine can ultimately be returned to its source.
The distinguishing feature is the physical design. Instead of constructing one enormous purpose-built extraction complex, IBAT packages equipment into transportable modules that can be configured for different resources. The company says this architecture can reduce the disruption involved in scaling a project and allow additional capacity to be installed progressively. Its system also incorporates water recovery, with IBAT reporting that as much as 98% of process water can be recycled. Those are company-reported performance characteristics, however, and real-world results will depend heavily on each project’s brine chemistry and supporting infrastructure.
The Utah Deployment Gave IBAT Something Many DLE Developers Still Need
IBAT gained an important real-world reference point when its modular plant began operating at U.S. Magnesium’s Utah site in 2024. Reuters reported at the time that the portable facility was roughly 450 feet long and had been transported to the site in 13 sections. The concept was deliberately smaller than many competing DLE developments, with modules intended to be replicated as production requirements increased rather than committing immediately to a very large permanent facility.
IBAT later reported that the Utah campaign completed more than 8,400 extraction cycles and that material from the operation was converted into roughly 25 tonnes of battery-grade lithium carbonate. Yet the experience also illustrated why technical performance alone does not guarantee a lasting business. Operations were suspended in September 2024 amid an exceptionally weak lithium-price environment. That episode gave IBAT useful operating data, but it also demonstrated that extraction technology ultimately has to survive commodity-market economics, not merely achieve strong recovery rates.
Smackover Testing Produced Some of IBAT’s Strongest Recent Numbers
One of the company’s most significant 2026 technical updates came from testing naturally occurring brines collected from multiple operators and resources across the Smackover Formation in Texas and Arkansas. IBAT reported approximately 98% lithium recovery and better than 99% rejection of contaminants across the compositions it tested. In an endurance test using one brine sample, a single extraction column completed more than 1,200 cycles without detected degradation of the extraction media.
Those results are potentially meaningful because brines are not chemically interchangeable. Concentrations of magnesium, calcium and other dissolved materials can change how separation technologies behave and how much pretreatment or downstream processing is necessary. IBAT’s Utah operation used a different feed source, so obtaining consistent results from several Smackover samples gives management another piece of evidence that the system may be adaptable. Even so, laboratory endurance testing remains different from operating continuously at a customer’s field site, where flow rates, equipment reliability, maintenance requirements and operating costs become decisive.
The Smackover Formation Has Become a Major Test Ground for U.S. Lithium
IBAT’s interest in the Smackover is understandable. The geological formation stretches through a large portion of the U.S. Gulf Coast region, and southern Arkansas has attracted particularly intense lithium-development activity. U.S. Geological Survey researchers estimated that Smackover brines in southern Arkansas contain between 5.1 million and 19 million metric tons of lithium in place. Crucially, the USGS cautioned that its estimate measures the geological resource and does not establish how much can be recovered economically.
Major companies are already trying to answer that second question. Standard Lithium and Equinor’s Smackover Lithium venture is developing a southwest Arkansas DLE project targeting roughly 22,500 tonnes of annual lithium-carbonate capacity in its initial phase, with production anticipated in 2028. The venture signed a binding agreement in 2026 to supply Trafigura with 8,000 tonnes annually for ten years once commercial production begins. For a smaller technology provider such as IBAT, that growing ecosystem creates opportunities—but also increasingly serious competition for projects, capital and customer confidence.
Small Testing Revenue Shows Customer Activity, Not Yet Commercial Scale
IBAT generated $120,000 in revenue during the quarter ended June 30, up from only $7,000 in the comparable period a year earlier. Management attributed the increase to brine-testing services. That revenue is modest compared with what would be expected from successful commercial plant deployments, but it provides evidence that prospective counterparties are paying the company to evaluate resources rather than every technical discussion remaining purely exploratory.
The underlying financial statements make the commercialization challenge clearer. IBAT recorded an operating loss of approximately $2.9 million during the quarter, compared with $3.6 million a year earlier. Its reported net loss was only $28,000, but that figure benefited substantially from a roughly $2.9-million non-cash gain related to the changing fair value of warrant liabilities. At June 30, IBAT reported about $9.4 million in cash and $39.2 million in total assets. The existing modular plant itself represented a significant portion of the company’s asset base, with plant and equipment reported at approximately $26.3 million net.
Commercial Deployment Will Require More Than Placing a Plant Beside a Well
A DLE system is only one piece of the lithium-production chain. IBAT’s equipment extracts lithium chloride from brine, but that material generally requires subsequent purification and conversion before becoming battery-grade lithium carbonate or lithium hydroxide. A prospective customer therefore needs either downstream processing infrastructure or an economically workable arrangement for completing those steps elsewhere. IBAT has increasingly described its technology as one component within a broader flowsheet rather than a stand-alone answer to every part of lithium production.
Site-specific engineering creates another hurdle. Brine concentration, temperature, impurities, available flow rates and existing infrastructure can all affect plant configuration. IBAT’s regulatory disclosures have warned that commercial deployments may require substantial customization, additional equipment and financing. This is why a successful sample test can begin a customer conversation without necessarily closing it. The meaningful milestones will be signed contracts, completed engineering, financing, installation, commissioning and sustained output at specifications that downstream buyers will accept.
The Lithium Market Is Becoming More Supportive, but It Remains Volatile
The backdrop has improved considerably from the market that forced IBAT’s Utah suspension in 2024. The International Energy Agency said global battery demand grew by more than 35% in 2025, surpassing 1.5 terawatt-hours, while lithium demand increased by roughly 25% annually on average over the previous two years. Battery-energy storage, alongside electric vehicles, has become an increasingly important source of consumption. Lithium prices at the beginning of 2026 were more than double their levels a year earlier, according to the IEA.
That rebound does not erase the industry’s recent lesson. Early-2026 lithium prices were still roughly 70% below their 2022 peak, illustrating just how dramatically project economics can move. DLE developers therefore need systems that remain competitive across commodity cycles rather than only during periods of exceptionally high lithium prices. IBAT’s smaller, modular approach is designed partly around that problem, but establishing a durable cost advantage will require commercial operating data covering energy, water, reagents, maintenance, media life and downstream refining—not recovery percentages alone.
The Next Milestone Is Proof of Repeatable Commercial Economics
Interest in DLE is growing because the technology offers the possibility of recovering a greater proportion of lithium from brines in much shorter periods than traditional evaporation ponds. But academic research warns against treating every DLE process as automatically low-impact. A major review published in Nature Reviews Earth & Environment found that environmental performance depends on factors including freshwater consumption, chemicals, energy requirements, waste generation and management of spent brine. The U.S. Department of Energy has likewise noted that commercial-scale water requirements remain difficult to generalize because DLE processes vary considerably.
For IBAT, that makes the next chapter straightforward to describe but difficult to execute. The company has field operating history, thousands of extraction cycles, recent Smackover test results and active customer discussions. What it does not yet have is a new, sustained deployment demonstrating repeatable production and attractive economics at a resource owner’s site. A definitive customer agreement followed by commissioning, stable production and acceptable downstream product quality would move the story materially forward. Until then, IBAT’s technology is closer to commercial deployment—but the most consequential proof still lies ahead.
































