Filter News
Area of Research
- (-) Materials (32)
- (-) Nuclear Science and Technology (7)
- (-) Supercomputing (8)
- Advanced Manufacturing (12)
- Biology and Environment (10)
- Building Technologies (1)
- Clean Energy (78)
- Computational Engineering (1)
- Computer Science (6)
- Electricity and Smart Grid (1)
- Energy Sciences (1)
- Fusion and Fission (7)
- Fusion Energy (6)
- Isotopes (2)
- Materials for Computing (6)
- National Security (7)
- Neutron Science (6)
- Quantum information Science (3)
- Sensors and Controls (1)
News Type
News Topics
- (-) 3-D Printing/Advanced Manufacturing (6)
- (-) Chemical Sciences (6)
- (-) Energy Storage (9)
- (-) Fusion (6)
- (-) Machine Learning (1)
- (-) Microscopy (9)
- (-) Molten Salt (4)
- (-) Quantum Science (4)
- (-) Space Exploration (4)
- Advanced Reactors (7)
- Artificial Intelligence (1)
- Big Data (5)
- Bioenergy (2)
- Biology (1)
- Biomedical (7)
- Buildings (1)
- Clean Water (1)
- Climate Change (4)
- Composites (4)
- Computer Science (19)
- Coronavirus (3)
- Critical Materials (7)
- Decarbonization (1)
- Environment (8)
- Exascale Computing (2)
- Frontier (2)
- High-Performance Computing (6)
- Isotopes (3)
- Materials (16)
- Materials Science (25)
- Nanotechnology (12)
- Neutron Science (8)
- Nuclear Energy (19)
- Physics (9)
- Polymers (9)
- Quantum Computing (5)
- Simulation (2)
- Summit (6)
- Sustainable Energy (4)
- Transportation (7)
Media Contacts
![Caption: Jaswinder Sharma makes battery coin cells with a lightweight current collector made of thin layers of aligned carbon fibers in a polymer with carbon nanotubes. Credit: Genevieve Martin/ORNL, U.S. Dept. of Energy](/sites/default/files/styles/list_page_thumbnail/public/2024-01/sharma1_1.jpg?h=f7dae89e&itok=JiSsMewF)
Electric vehicles can drive longer distances if their lithium-ion batteries deliver more energy in a lighter package. A prime weight-loss candidate is the current collector, a component that often adds 10% to the weight of a battery cell without contributing energy.
![ORNL researchers have developed a new pressing method, shown as blue circle on right, that produces a more uniform solid electrolyte than the traditionally processed material with more voids, shown as gray circle on left. The material can be integrated into a battery system, center, for improved stability and rate performance. Credit: Andy Sproles/ORNL, U.S. Dept. of Energy](/sites/default/files/styles/list_page_thumbnail/public/2023-06/Electrolyte.StoryTip_0.png?h=b6717701&itok=PIYcf5iS)
ORNL scientists found that a small tweak created big performance improvements in a type of solid-state battery, a technology considered vital to broader electric vehicle adoption.
![Xiao-Ying Yu](/sites/default/files/styles/list_page_thumbnail/public/2023-04/2023-P04601.jpg?h=8f9cfe54&itok=fw5q1UBj)
Xiao-Ying Yu, a distinguished scientist in the Materials Science and Technology Division of the Department of Energy’s Oak Ridge National Laboratory, has recently been chosen for several prominent editorial roles.
![An Oak Ridge National Laboratory study compared classical computing techniques for compressing data with potential quantum compression techniques. Credit: Getty Images](/sites/default/files/styles/list_page_thumbnail/public/2023-04/QuantumCompression.png?h=9fa9abd8&itok=o0n1r7et)
A study led by Oak Ridge National Laboratory researchers identifies a new potential application in quantum computing that could be part of the next computational revolution.
![Researchers at Oak Ridge National Laboratory discovered a tug-of-war strategy to enhance chemical separations needed to recover critical materials. Credit: Alex Ivanov/ORNL, U.S. Dept. of Energy](/sites/default/files/styles/list_page_thumbnail/public/2023-04/lanthanide.png?h=41c68e13&itok=KvT1ZLJo)
ORNL scientists combined two ligands, or metal-binding molecules, to target light and heavy lanthanides simultaneously for exceptionally efficient separation.
![Andrew Ullman, Distinguished Staff Fellow at Oak Ridge National Laboratory, is using chemistry to devise a better battery](/sites/default/files/styles/list_page_thumbnail/public/2023-04/2021-p11900.jpg?h=83468474&itok=EBMfr0Sn)
Andrew Ullman, Distinguished Staff Fellow at Oak Ridge National Laboratory, is using chemistry to devise a better battery
![Benjamin Manard](/sites/default/files/styles/list_page_thumbnail/public/2023-03/2021-P08330%5B11%5D_0.jpg?h=8f9cfe54&itok=x99Uqpen)
Benjamin Manard has been named to the editorial board of Applied Spectroscopy Practica, serving as an associate editor.
![An Oak Ridge National Laboratory study used satellites to transmit light particles, or photons, as part of a more efficient, secure quantum network. Credit: ORNL, U.S. Dept. of Energy](/sites/default/files/styles/list_page_thumbnail/public/2023-02/QuantumSatLaser_3.png?h=8fdb084c&itok=LUcATFOD)
A study by Oak Ridge National Laboratory researchers has demonstrated how satellites could enable more efficient, secure quantum networks.
![Researchers observe T-shaped cluster drives lanthanide separation system during liquid-liquid extraction. Credit: Alex Ivanov/ORNL, U.S. Dept. of Energy](/sites/default/files/styles/list_page_thumbnail/public/2023-02/image_1.png?h=b69e0e0e&itok=1tyDrWMw)
Researchers at ORNL zoomed in on molecules designed to recover critical materials via liquid-liquid extraction — a method used by industry to separate chemically similar elements.
![Researchers captured atomic-level insights on the rare-earth mineral monazite to inform future design of flotation collector molecules, illustrated above, that can aid in the recovery of critical materials. Credit: Chad Malone/ORNL, U.S. Dept. of Energy](/sites/default/files/styles/list_page_thumbnail/public/2023-01/float.jpg?h=60f9f39d&itok=i2CRqyBK)
Critical Materials Institute researchers at Oak Ridge National Laboratory and Arizona State University studied the mineral monazite, an important source of rare-earth elements, to enhance methods of recovering critical materials for energy, defense and manufacturing applications.