What's Happening?
The Department of Energy’s (DOE) Oak Ridge National Laboratory (ORNL) has established the Sulfide/Sulfur Translational Advanced Research Lab, or STAR Lab, to bridge the gap between promising battery materials and scalable, manufacturable cell technologies.
Researchers at STAR Lab are investigating how new battery technologies, particularly sulfide-based solid-state batteries and sulfur-based electrodes, perform when integrated into complete battery cells, rather than just in isolated material tests. The lab's mission is to ensure that materials that show high performance in small laboratory settings can withstand the demands of manufacturing and real-world use. This involves studying how electrode formulations, binders, interfaces, cell designs, pressure, and testing conditions affect performance. STAR Lab also examines both dry and liquid-based manufacturing approaches, considering how processing choices impact materials and the resulting battery. The lab's specialized capabilities complement ORNL’s broader battery research and manufacturing portfolio, including the DOE’s Battery Manufacturing Facility, which is the nation’s largest open-access battery manufacturing research and development center.
Why It's Important?
The work at STAR Lab is critically important for the U.S. in accelerating the development and deployment of next-generation battery technologies. Many promising battery materials fail to translate from lab-scale success to industrial production due to manufacturing challenges and performance degradation in complete cells. By focusing on manufacturability and scalability, STAR Lab directly addresses a major bottleneck in battery innovation. This research supports applications ranging from high-energy uses like drones, robotics, and transportation to stationary energy storage for the electric grid, all of which are vital for U.S. economic competitiveness and energy independence. Overcoming these challenges will enable the U.S. to develop more efficient, safer, and cost-effective batteries, reducing reliance on foreign supply chains and bolstering domestic manufacturing capabilities. The emphasis on solid-state and sulfur-based batteries, which offer potential for higher energy density and lower cost, could revolutionize various industries and contribute significantly to clean energy goals.
What's Next?
STAR Lab will continue its research into how advanced battery materials can be processed reproducibly and perform under realistic conditions. This includes designing experiments around manufacturability, reproducibility, and quality control. The lab will also focus on developing testing and evaluation approaches for sulfide solid-state and sulfur-based batteries, supported by the DOE’s Office of Critical Minerals and Energy Innovation through the Advanced Battery Materials Research Program. Researchers will continue to use advanced characterization techniques, such as neutron and X-ray methods, spectroscopy, and microscopy, to identify causes of performance loss and guide improvements in materials and cell designs. Computational models will be used to interpret experimental results and predict optimal designs and processing conditions. STAR Lab will also continue to collaborate with external partners, evaluating their materials for processing compatibility and investigating factors that limit performance, ultimately aiming to transition promising battery technologies to larger-scale production.
Beyond the Headlines
The establishment and focus of STAR Lab highlight a fundamental challenge in advanced materials science: the 'valley of death' between laboratory discovery and industrial application. Many scientific breakthroughs never make it to market because scaling up production introduces unforeseen complexities. STAR Lab's translational research environment is designed to bridge this gap, emphasizing the practical aspects of manufacturing and real-world performance. This approach is crucial not only for battery technology but for any advanced material science where scalability is key. The lab's work also touches upon the broader implications of material sensitivity, such as the moisture sensitivity of sulfide solid electrolytes, which necessitates innovative processing techniques. Furthermore, by focusing on sulfur-based electrodes, which utilize abundant and inexpensive sulfur, the lab is contributing to the development of more sustainable and economically viable battery solutions, potentially reducing the environmental footprint and cost of energy storage technologies.













