A University of Missouri researcher is part of a multi-university team developing hybrid materials that combine magnetic and semiconductor functions. This innovation aims to create devices that operate at higher speeds and use less power than current electronic devices.
The NYU physics department is part of a $6.25 million grant to design and develop nano-magnetic materials and devices. The researchers aim to create more compact, efficient computers and cell phones with longer battery life.
Researchers at the University of Washington have developed a material that can operate at room temperature, allowing for the manipulation of electrons' magnetism. This breakthrough has the potential to create broad new capabilities for computers and digital devices, including reduced power consumption.
Researchers at University of Iowa and partners visualize magnetic interactions between two atoms less than one nanometer apart, enhancing magnetic semiconductor materials. The technique could lead to smaller, more efficient computer chips using spintronics technology.
Researchers at MIT have developed a new magnetic semiconductor material that can inject spin-polarized electrons into silicon semiconductors. This breakthrough enables the creation of more efficient electronic circuits with reduced size and increased versatility.
Researchers at the University of Michigan have successfully achieved quantum entanglement of three electrons using ultrafast laser pulses and coherent techniques. This breakthrough could lead to the development of quantum gates necessary for storing and processing information in practical quantum computers, offering significantly enhan...
Researchers at the University at Buffalo have developed a new semiconducting material that exhibits key properties for spintronic devices, including ferromagnetism and hysteresis. This breakthrough could lead to faster processing speeds, non-volatility, and potentially quantum computing capabilities.