The Mg-Li-Cu alloy anode demonstrates superior performance in lithium metal batteries, ensuring stability and efficiency through advanced structural properties.
In a study published in the Journal of Materials Research and Technology, researchers proposed a method to control grain size and improve the high-temperature durability of Al-Cu-Mg-Ag alloy, finding that specific annealing conditions significantly enhance alloy performance.
In a recently published journal Chemistry of Materials, researchers from the Norwegian University of Science and Technology found a new method to produce clean oxygen using Hexagonal Manganites.
In a recent study published in the journal Dalton Transactions, scientists at the Shibaura Institute of Technology have made significant progress in the creation of displacement-type ferroelectric material with a high dielectric constant.
Dr. Johannes Fessler of the Leibniz Institute for Catalysis in Rostock has created novel techniques for manufacturing pharmacological precursors employing iron, manganese, and cobalt catalysts.
Groundbreaking research reveals the quantum metric nonlinear Hall effect, paving the way for new materials with potential applications in electronic components.
Cornell researchers took a novel approach to explore the way microstructure emerges in a 3D-printed metal alloy: They bombarded it with X-rays while the material was being printed.
Transition metals exchange electrons with supporting ligands to form complexes that facilitate reaction catalysis in several industries, like pharmaceutical production. Both the metal center and the ligand moiety have pivotal roles in enabling catalysis.
Fusion reactors, fast breeder reactors, and solar thermal power plants are being developed as low-impact, resource-free power plants.
A team of scientists developed a new quantum-mechanics-based approach to predict metal ductility. The team demonstrated its effectiveness on refractory multi-principal-element alloys.
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