Physicists Find a Strong Link Between Gluon Saturation and Symmetry Principles
Theorists show gluon fields characterizing gluon saturation can describe a universal pattern of particle emissions—a manifestation of asymptotic symmetry.
Theorists show gluon fields characterizing gluon saturation can describe a universal pattern of particle emissions—a manifestation of asymptotic symmetry.
Successfully modeling chromium-62 hints at an interesting structure for neutron-laden calcium-60.
A higher electrolyte temperature increases the activity of a thin-film electrode for solar hydrogen generation by 40 percent.
Researchers developed a novel approach to map how a community of leaf-cutter ants, fungi, and bacteria work together to break down plant biomass.
Scientists examine the unusual insulator-to-metal phase transition in Mn3Si2Te6
Scientists engineered camelina and pennycress seeds to produce nearly pure specialized oils, paving the way for improved biofuel production.
A novel test of coexistence theory shows that plants can coexist or exclude one another depending on which mycorrhizal fungi species are present.
Scientists use high-energy heavy ion collisions in a new way to reveal subtleties of nuclear structure with implications for many areas of physics.
A novel gene, BOOSTER, enhances plants’ photosynthesis efficiency and productivity.
Theorists identify new effects needed to compute the nuclear beta decay rate with a precision of a few parts in ten thousand.
A revolutionary Coherent Correlation Imaging method visualizes electronic ordering in magnetic materials and opens a path to new data storage technologies.
Theoretical calculations suggest charm tetraquarks may be less compact than previously thought.