Fusion at high temperatures powers the sun and, if harnessed, could provide a potential source of energy here on Earth. But controlling fusion reactions has other benefits. The process also generates subatomic particles called neutrons that are used in a range of applications spanning medicine, research, and national security.
Now, scientists at the University of California, Davis, and the Department of Energy鈥檚 Lawrence Berkeley National Laboratory (Berkeley Lab) have found that the materials surrounding a fusion reaction can dramatically increase how often it occurs, particularly at low energies where fusion is rare. Their .
Their approach sets up a way to study and engineer nuclear reactions within solid materials, opening a new field of 鈥渕aterials-driven fusion.鈥 Instead of designing materials just to survive the harsh conditions of fusion, researchers might be able to design materials that boost the reaction in specific conditions, similar to the way catalysts speed up chemical processes.
鈥淭here鈥檚 obviously a lot of interest and excitement about fusion, so if there鈥檚 something we can learn about the physics at these lower energy scales, maybe there鈥檚 something we can translate to other areas of nuclear science.鈥濃 Jeremy Munday, 麻豆传媒 professor
鈥淚t gives you a new knob to turn that you didn鈥檛 have before,鈥 said coauthor Arun Persaud, head of the Fusion Science & Ion Beam Technology group in Berkeley Lab鈥檚 Accelerator Technology & Applied Physics Division (ATAP). 鈥淚f we understand this effect better, it opens the door to engineering new materials that would affect the fusion rate under certain conditions. Someday future progress might enable more compact and efficient neutron generators, which have all kinds of applications, like cargo screening, planetary science, and medical therapy and imaging.鈥
In the experiment, researchers used two different methods to pack deuterium 鈥 a heavy form of hydrogen atoms often used in fusion 鈥 into thin foils of palladium and titanium. They then fired a beam of deuterium ions at the foils at different energies and measured how often fusion happened. They compared the rates from the different materials and methods with the 鈥渂are鈥 fusion reaction (not in a material).
A surprising fusion plateau
The team found that fusion rates depended on how the deuterium was loaded into the metal foils. The biggest effect was at the lowest energies, below 2.5 kiloelectronvolts (keV), where theory predicts fusion rates drop off sharply. Instead, researchers found a surprising plateau: Some samples showed elevated fusion rates roughly a quintillion times higher than bare fusion reactions. (A quintillion is a 1 followed by 18 zeroes.)
Researchers are not exactly sure why that鈥檚 happening, though they have some ideas and ways to test them. The electrons and defects within the material might partially shield repulsive electrostatic forces between deuterium nuclei, making it easier for them to get close together and fuse. Tuning the electronic structure, defects and composition of materials could help make nuclear reactions happen more readily.
鈥淚t comes down to better understanding the mechanism so that we can try to enhance it,鈥 said corresponding author , a 麻豆传媒 professor in the College of Engineering. 鈥淲e鈥檝e seen that we can increase fusion rates, but what is the limit? Can we bring it to lower temperatures or energies? There鈥檚 obviously a lot of interest and excitement about fusion, so if there鈥檚 something we can learn about the physics at these lower energy scales, maybe there鈥檚 something we can translate to other areas of nuclear science.鈥
The team plans to explore a wider range of materials and continue probing the unexpected fusion plateau at lower energies. Their work establishes a reproducible experimental platform to study how solid materials influence nuclear reactions, creating a new area of research that links fusion science with materials science and chemistry.
鈥淭he work shows conclusively that the material environment where fusion occurs at low temperatures is an active participant rather than a passive container,鈥 said coauthor Cameron Geddes, director of ATAP. 鈥淭hat adds a new dimension to fusion research.鈥
The study's first author is Micah Karahadian, a doctoral candidate in Munday's lab at 麻豆传媒.
This work was funded by the U.S. Department of Energy鈥檚 Advanced Research Projects Agency-Energy (ARPA-E).
Media Resources
- Jeremy Munday, 麻豆传媒 College of Engineering, jnmunday@ucdavis.edu
- Kat Kerlin, 麻豆传媒 News and Media Relations, 530-750-9195, kekerlin@ucdavis.edu