Solved: The Case of the Missing “Excited” Nucleons
Discovery could provide a deeper understanding of the dynamics of the three quarks enslaved inside the nucleon.
Discovery could provide a deeper understanding of the dynamics of the three quarks enslaved inside the nucleon.
Precision analytical techniques developed for fundamental experiments in nuclear physics now enable routine measurements of ultra-low concentrations of Krypton radioisotopes in samples of water, ice, and gas.
Thomas Jefferson Laboratory lends expertise in cryogenics developments.
New design significantly increases the lifetime and reduces the platinum content in electrocatalysts needed for advanced fuel cells for automotive applications.
Squeezing creates new class of material built from clusters of carbon atoms.
High yield production of Actinium-225 and Radium-223 achieved by high energy proton bombardment of natural thorium targets.
High-efficiency compound semiconductor solar cells can now be printed on flexible, plastics.
Nanoscale features in rocks enable more carbon dioxide to be trapped as a solid carbonate material underground.
Enzymes originating from marine sponges were intentionally altered to create a new enzyme that can make semiconductors in artificial cells.
House-of-Cards structure leads to improved zeolite catalyst.
Chemistry provides a route to selective binding and extraction of radioactive cesium.
New calculations have quantified the boundaries and uncertainties of the ‘chart of the nuclides’—the extended periodic table of all matter.