Imagine if doctors could precisely print miniature capsules capable of delivering cells needed for tissue repair exactly where they are needed inside a beating heart.
Ultrathin bismuthene islands on graphite slide freely in one direction and pause unpredictably, revealing new ways to control friction in nanoscale materials.
Scientists have developed a new microscope that significantly improves the way heat flow in materials can be measured. This advancement could lead to better designs for electronic devices and energy systems.
Data science has revolutionized the hunt for high-performing catalysts, enabling scientists to quickly identify and test suitable materials. A group of researchers has recently reviewed this phenomenon.
Atomically thin chromium selenide shows unexpected magnetism, challenging theory and opening new paths for spintronics and advanced electronic devices.
PI's new objective focusing stage excels in fast nano-focusing applications, such as DNA sequencing, laser-technology, wafer metrology, super-resolution microscopy, medical technology, and slide scanning applications.