Putting Light to Work at the Quantum Scale
Using artificial nanostructures to control the properties of light could play a prominent role in the future of computing.
Using artificial nanostructures to control the properties of light could play a prominent role in the future of computing.
New radiolabeled compound used to image sucrose transport.
Bacterial biomass found to have an impact.
International teams assess computational tools to speed up annotations.
When it comes to stressing a crystal during irradiation, not all atoms are created equal.
A phase change at absolute zero temperature may provide key insights into the decades-old mystery of high-temperature superconductivity.
Designing protein assemblies whose interactions can be manipulated to respond to a single environmental cue.
Advances in how we calculate optical properties of semiconductors shorten the path to improved solar cells and other optoelectronic devices.
New clues emerge about microbial decomposition mechanisms.
Tropical atmospheric data used to test climate model accuracy.
Molecular structures provide insights into biomass deconstruction.
Nanoscale imaging of the current generated by light provides insights for future generation optoelectronic devices.