Modern nuclear energy is much different from what many imagine. Instead of creating blueprints for massive nuclear power plants, today’s engineers are designing small modular reactors (SMRs). These reactors require specialized, concentrated fuel, and the Oak Ridge, Tennessee-based company LIS Technologies is working toward building a reliable pipeline.
Most nuclear power plants and older reactors are fueled by low-enriched uranium, or LEU. Natural uranium is about 0.7% U-235, the specific isotope needed to power nuclear reactors. LEU contains up to 5% U-235.
However, newer, ultra-efficient reactors require an even higher concentration of U-235. Most run on high-assay low-enriched uranium (HALEU), which is up to 20% U-235.
Many outmoded industry commentators believe that further uranium mining is the key to securing fuel for these high-efficiency reactors. The answer to guaranteeing an ongoing supply of HALEU, though, isn’t increased mining. It’s an efficient, scalable enrichment process.
However, the process of uranium enrichment is complex and time-consuming. Gas centrifuge enrichment is currently the most widespread enrichment technology, and it requires “cascades” of hundreds of centrifuges that gradually increase U-235 concentration.
LIS Technologies has created a fast, elegant alternative that can keep up with the fuel needs of a growing fleet of advanced reactors. Instead of relying on hundreds of centrifuges, it uses something far simpler: lasers.
LIS Technologies was co-founded by Laser Scientist Christo Liebenberg and Dr. Jeff Eerkens, who is widely considered the “Father of Laser Enrichment.” The company uses finely calibrated lasers to separate U-235 from other uranium isotopes. Its process creates LEU and HALEU in a fraction of the time it takes other technologies. The company’s current laser can create LEU in a single stage, and HALEU in two stages.
“Single-stage means you irradiate the uranium only once, and it's enriched all the way from natural to the LEU level,” Liebenberg explains. “If you irradiate the product a second time, you can go all the way to HALEU, or 20%.”
Laser enrichment in itself isn’t new. LIS Technologies' method evolved from the Condensation Repression Isotope Selective Laser Activation (CRISLA) process that Dr. Eerkens first developed in the 1970s. Laser enrichment has long been recognized as an effective enrichment technology, but until now, no one has managed to implement it on a large scale.
“Laser enrichment has been around for 55 years, and no one has been able to successfully scale it to take it to commercialization. Not one out of 26-plus countries,” says Liebenberg. “Now, we’re using a laser and a process that is very different from what has been used in the past. It’s much more scalable, with significantly higher reliability. We can now scale the entire process.”
The technology is there, but it will still be several years before we see an established HALEU pipeline. The NRC (Nuclear Regulatory Commission) imposes strict safety regulations, and LIS Technologies is currently in the midst of a multi-stage approval process.
“Phase one is demonstration. That's almost the most important phase. It's about repeating results, optimizing conditions, and showing we can do single-stage LEU and double-stage HALEU. Then, for the next two years, we have to scale the equipment and repeat the enrichment results with the scaled equipment,” Liebenberg says.
“In phase three, another two years, that's where we basically build a plant or commercial facility,” he continues. “So that's the timeline. At least six years, maybe seven years, before we have the product ready.”
While the infrastructure may not yet be in place, LIS Technologies is blazing a bold path forward. Alongside SMR developers, the company is opening up a critical avenue for sustainable nuclear growth.
Modern nuclear energy is much different from what many imagine. Instead of creating blueprints for massive nuclear power plants, today’s engineers are designing small modular reactors (SMRs). These reactors require specialized, concentrated fuel, and the Oak Ridge, Tennessee-based company LIS Technologies is working toward building a reliable pipeline.
Most nuclear power plants and older reactors are fueled by low-enriched uranium, or LEU. Natural uranium is about 0.7% U-235, the specific isotope needed to power nuclear reactors. LEU contains up to 5% U-235.
However, newer, ultra-efficient reactors require an even higher concentration of U-235. Most run on high-assay low-enriched uranium (HALEU), which is up to 20% U-235.
Many outmoded industry commentators believe that further uranium mining is the key to securing fuel for these high-efficiency reactors. The answer to guaranteeing an ongoing supply of HALEU, though, isn’t increased mining. It’s an efficient, scalable enrichment process.
However, the process of uranium enrichment is complex and time-consuming. Gas centrifuge enrichment is currently the most widespread enrichment technology, and it requires “cascades” of hundreds of centrifuges that gradually increase U-235 concentration.
LIS Technologies has created a fast, elegant alternative that can keep up with the fuel needs of a growing fleet of advanced reactors. Instead of relying on hundreds of centrifuges, it uses something far simpler: lasers.
LIS Technologies was co-founded by Laser Scientist Christo Liebenberg and Dr. Jeff Eerkens, who is widely considered the “Father of Laser Enrichment.” The company uses finely calibrated lasers to separate U-235 from other uranium isotopes. Its process creates LEU and HALEU in a fraction of the time it takes other technologies. The company’s current laser can create LEU in a single stage, and HALEU in two stages.
“Single-stage means you irradiate the uranium only once, and it's enriched all the way from natural to the LEU level,” Liebenberg explains. “If you irradiate the product a second time, you can go all the way to HALEU, or 20%.”
Laser enrichment in itself isn’t new. LIS Technologies' method evolved from the Condensation Repression Isotope Selective Laser Activation (CRISLA) process that Dr. Eerkens first developed in the 1970s. Laser enrichment has long been recognized as an effective enrichment technology, but until now, no one has managed to implement it on a large scale.
“Laser enrichment has been around for 55 years, and no one has been able to successfully scale it to take it to commercialization. Not one out of 26-plus countries,” says Liebenberg. “Now, we’re using a laser and a process that is very different from what has been used in the past. It’s much more scalable, with significantly higher reliability. We can now scale the entire process.”
The technology is there, but it will still be several years before we see an established HALEU pipeline. The NRC (Nuclear Regulatory Commission) imposes strict safety regulations, and LIS Technologies is currently in the midst of a multi-stage approval process.
“Phase one is demonstration. That's almost the most important phase. It's about repeating results, optimizing conditions, and showing we can do single-stage LEU and double-stage HALEU. Then, for the next two years, we have to scale the equipment and repeat the enrichment results with the scaled equipment,” Liebenberg says.
“In phase three, another two years, that's where we basically build a plant or commercial facility,” he continues. “So that's the timeline. At least six years, maybe seven years, before we have the product ready.”
While the infrastructure may not yet be in place, LIS Technologies is blazing a bold path forward. Alongside SMR developers, the company is opening up a critical avenue for sustainable nuclear growth.
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