In the quantum realm, getting electrons to march to the same beat is famously ...
Scientists switched a quantum material's electronic pattern from stripes to a checkerboard using only a tiny magnetic nudge.
Typically, the charge of electrons is used to store and process information in electronics-based devices. In spintronics, the focus is instead on the magnetic moment or on magnetic vortices, so-called ...
Spintronics—a technology that harnesses the electron's magnetic quantum states to carry information—could pave the way for a new generation of ultra-energy-efficient electronics. Yet a major challenge ...
A new microchip-sized device could dramatically accelerate the future of quantum computing. It controls laser frequencies with extreme precision while using far less power than today’s bulky systems.
Key market opportunities in AI spintronics lie in the integration of AI for design and optimization, demand for low-power ...
Researchers at Harvard have created a groundbreaking metasurface that can replace bulky and complex optical components used in quantum computing with a single, ultra-thin, nanostructured layer. This ...
ECE faculty perform fundamental research on new materials and devices to address emerging computational challenges with an engineering perspective. While ECE faculty has a strong presence in CMOS ...
Spintronics exploits the spin of electrons in addition to their charge, enabling memory devices that combine non-volatility, high speed and low energy consumption. Central to this field are magnetic ...
What if the most complex problems plaguing industries today—curing diseases, optimizing global supply chains, or even securing digital communication—could be solved in a fraction of the time it takes ...
Topological crystalline insulator research has reached a long-awaited milestone: Finnish physicists built the first 2D ...