NKLR Secures Strategic Pilot with Uvation—New Nuclear Deal Targets AI Power Growth and 100 MWe Expansion


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NKLR’s Micro-Modular Reactor Pilot Aims to Redefine AI Power: 1 MWe Deal with Uvation Highlights Sector Shift

Strategic Nuclear Pilot Program Opens Door to 100 MWe Expansion

In a decisive move set to impact both the energy and technology landscapes, Terra Innovatum Global (NASDAQ:NKLR) has signed a Letter of Intent with Uvation, an integrated technology provider in the AI data center space, for a 1 MWe nuclear pilot. The agreement includes an option to rapidly expand to a full 100 MWe deployment, targeting Uvation’s surging infrastructure demands as the AI race heats up.

This partnership centers on deploying NKLR’s SOLO micro-modular nuclear reactors—systems engineered for resilience and rapid scale. The strategic value is clear: while AI processing accelerates, it’s the power grid, not silicon, that now constrains deployment speed. This pilot positions NKLR at the intersection of AI and energy, signaling how future tech may be powered less by traditional grids and more by purpose-built nuclear systems.

Behind-the-Meter Nuclear Power Tackles Energy Security and Reliability Gaps

The SOLO reactors offer behind-the-meter energy, bypassing grid bottlenecks that have slowed large-scale AI and data center expansion. With built-in safety, modular design, and a minimal on-site footprint, SOLO systems provide:

  • Continuous, stable, CO2-free power directly at data centers
  • Critical redundancy and risk mitigation against grid outages
  • Scalability from 1 MWe pilots up to potential 1 GW installations
  • Adaptability for industrial use, water treatment, and medical radioisotope production

These benefits target not just immediate operational needs, but a growing concern in tech: power security now drives the limits of AI growth more than hardware. With global demand for AI data outpacing available electricity, and major project delays caused by power shortages, NKLR’s model promises to flip that equation.

Feature SOLO Micro-Modular Reactor Impact for Data Centers
Output (Pilot / Max) 1 MWe (scalable to 100+ MWe, up to 1 GW) Supports pilot then full-scale high-density AI clusters
Deployment Timeframe Market-ready globally in 3 years Faster AI and cloud infrastructure buildout
Redundancy & Security Built-in, on-site generation Minimizes downtime and boosts resilience
CO2 Emissions Zero (clean, nuclear energy) Enables sustainable tech sector expansion
Adaptability LEU+ & HALEU fuels, off-grid, multi-use Flexibility for AI, industry, and medical uses

NKLR’s Technology Poised to Accelerate AI Infrastructure and Sustainability

Industry voices from both companies emphasized that while silicon advances fast, power sourcing lags. “Energy security now defines the speed at which AI can scale,” Uvation CEO Reen Singh said, noting the severe project delays caused by grid limits and supply disruptions. NKLR’s approach allows AI centers to decouple from public utilities, sidestep capital overruns, and secure fast, revenue-generating deployment of new compute resources.

NKLR’s reactors can also serve hard-to-abate industries—such as steel and cement production—expanding the company’s potential market far beyond data centers alone. This modular, plug-and-play model may set a new benchmark for infrastructure in sectors where energy availability is increasingly the make-or-break factor.

Key Takeaways: Deal May Signal New Market Paradigm

The strategic 1 MWe pilot and its expansion pathway to 100 MWe suggest NKLR is well positioned to capitalize on two intersecting trends: soaring AI demand and a global search for reliable, green power. As the SOLO micro-modular reactor edges toward commercialization within three years, Terra Innovatum is betting that the ability to rapidly deploy resilient, scalable energy sources will set the pace in next-generation tech.

For investors and industry watchers, this pilot offers a window into the likely evolution of both data center infrastructure and nuclear energy’s commercial footprint. If successful, the approach could redefine how power is delivered where it’s needed most—one modular unit at a time.


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