At the International Conference on High Energy Physics held in Brazil, the BESIII Collaboration at the Beijing Electron Positron Collider announced in a special plenary report that after fifteen years of sustained research, the BESIII Collaboration identified that the dominant constituent of the X(2370) is a pseudoscalar glueball with spin-parity quantum numbers of 0⁻⁺. The strong interaction forc
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The BESIII Collaboration, led by the Institute of High Energy Physics of the Chinese Academy of Sciences, has achieved the world's most precise measurement of the electric dipole moment (EDM) of the Lambda (Λ) hyperon using quantum-entangled Λ–anti-Λ pairs produced in J/ψ decays. The result improves the experimental sensitivity by about three orders of magnitude compared with the previous measurem
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Perched atop a seven-story building at the U.S. Department of Energy’s Brookhaven National Laboratory, the “Quantum Lighthouse” is a key pillar of the free-space optical (FSO) link spanning Brookhaven Lab, the State University of New York at Stony Brook and Yale University.
Space & AstronomyTechnology & Innovation#Brookhaven National Laboratory#astronomy#astrophysics#advanced materials#innovation#NSF–DOE Vera C. Rubin Observatory
A partnership spanning chemistry, engineering, and quantum device design has yielded a millisecond-coherent transmon, proving that smarter materials may hold the key to the next quantum leap.
Space & AstronomyTechnology & Innovation#Brookhaven National Laboratory#astronomy#astrophysics#advanced materials#innovation
Eleven Suffolk County Community College students and recent graduates completed an innovative pilot workforce development program shaped by nuclear technology and radiochemistry expertise at Brookhaven Lab.
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A prototype for the world’s biggest neutrino experiment is running under extreme conditions to see how well the technology performs under pressure
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The Center for Functional Nanomaterials recently installed a new state-of-the-art scanning transmission electron microscope that could lead to new breakthroughs in energy technologies, quantum materials, microelectronics, and beyond.
Technology & Innovation#Brookhaven National Laboratory#advanced materials#innovation
NSF transformed materials science from isolated research efforts into a powerful scientific enterprise that drives innovation across industry and everyday life
Medical ResearchTechnology & Innovation#U.S. National Science Foundation#Science Matters#medical research#clinical research#advanced materials#innovation
Brookhaven National Laboratory and PsiQuantum today announced a collaboration that will leverage PsiQuantum’s software platform “Construct” to support Brookhaven Lab scientists.
Technology & Innovation#Brookhaven National Laboratory#advanced materials#innovation
Particle interaction could be interpreted as a signal from a dark matter candidate — but more data is needed.
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Researchers will develop an AI model to accelerate electric grid expansion planning with optimal accuracy, affordability, and efficiency in operations.
Energy InfrastructureTechnology & Innovation#Brookhaven National Laboratory#grid#energy security#advanced materials#innovation
Research NewsLawrence Berkeley National Laboratory
Lawrence Berkeley National Laboratory’s (Berkeley Lab) Advanced Light Source produces bright beams of light used to study materials and molecules down to the…
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The Electron-Ion Collider project reached its first purchasing milestone: A long-lead procurement contract was completed with the delivery and acceptance of 1,069 lead-tungstate crystals.
Particle Physics#Brookhaven National Laboratory#Particle Physics#High Energy Physics#Jefferson Lab
Researchers have successfully transmitted light particles containing quantum information through open air between Brookhaven Lab and Stony Brook University.
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Is the universe as stable as we think it is? That's one of the big questions that particle physicists worldwide are preparing to answer with the Large Hadron Collider, or LHC—the world's most powerful particle accelerator—when its upgrade is completed in about four years. In the meantime, researchers, including a cohort at the University of Michigan, are working to sharpen their analytical tools and techniques to make the most of LHC's current and future data.
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