Researchers at Lawrence Livermore National Laboratory (LLNL) and their collaborators conducted experiments with gold to learn more about the unexpected structures and properties it would adopt under high pressure. The results, which show gold switching structure at 10 million times the Earth’s atmospheric pressure, are essential for planetary modeling and fusion science.
Diamond exhibits surprising nanoscopic heat traps
New research shows that diamond—although known for being the best natural heat conductor on Earth—at the atomic scale it can briefly trap heat in unexpected ways. The findings could influence how scientists design diamond-based quantum technologies, including ultra-precise sensors and future quantum computers.
What makes Redox flow batteries safer than lithium-ion options?
Discover how Harvard University’s innovative Redox flow battery technology offers a safer alternative to traditional lithium-ion options, especially for storing renewable energy.
3D-Micromac introduces next-generation laser sample preparation platform for whole semiconductor wafer and system-level failure analysis
High-precision analysis of 2D materials microstructures achieved using electron microscopy and machine learning
A research team led by National Institute for Materials Science, Japan, has, for the first time, produced nanoscale images of two key features in an ultra-thin material: twist domains (areas where one atomic layer is slightly rotated relative to another) and polarities (differences in atomic orientation) by combining scanning transmission electron microscopy with artificial intelligence.





