Synopsis

Spin Transport in Room-Temperature Germanium

Physics 8, s56
Germanium layers can carry spin-polarized currents over several hundred nanometers at room temperature, a key asset for spintronic applications.
Sergei Dushenko/Osaka University and Masashi Shiraishi/Kyoto University

Finding materials that can sustain a spin-polarized current is key for further developing the field of spintronics. Germanium is a promising material because it has a higher carrier mobility than silicon, which could allow for faster devices, but spin transport in germanium has so far only been clearly demonstrated at low temperature (below 225K). A new room-temperature experiment shows that spin currents can travel more than half a micrometer along a thin slab of doped germanium.

Spintronics—in which electron spin is used to carry information—could revolutionize the electronics industry by increasing computation speed and lowering power consumption. But in most materials, scattering and fluctuating magnetic fields can rapidly flip spins, causing the loss of spin polarization and the associated information. Germanium has a particular lattice symmetry that should reduce much of this spin relaxation. However, since germanium is nonmagnetic, measuring spin transport is not easy because spin currents have to be created in a magnetic material and injected into germanium.

Masashi Shiraishi of Kyoto University, Japan, and his colleagues previously developed a method for studying room-temperature spin transport in semiconductors. They now apply the method to a germanium layer highly doped with an electron donor (phosphorous) and grown on a silicon substrate. On one side of the layer, a ferromagnetic strip, excited by microwaves, injected a spin current into the germanium. This current diffused towards a metallic strip on the opposite side, where it was measured by a detector sensitive to spin-polarization. The team derived a room-temperature spin diffusion length of 660 nanometers—a value comparable to other spin-transport materials—suggesting that germanium could be a potential building block for spin-based transistors.

This research is published in Physical Review Letters.

–Michael Schirber


Subject Areas

MagnetismSemiconductor PhysicsMaterials Science

Related Articles

Bypassing the Speed Limit for Thermally Driven Demagnetization
Condensed Matter Physics

Bypassing the Speed Limit for Thermally Driven Demagnetization

Contrary to expectations, the magnetization dynamics of a ferromagnet can be accelerated by increasing temperature, laser excitation, or magnetic field—a behavior that holds promise for high-speed spintronics. Read More »

A Quantum Filter for Improved Spintronics
Condensed Matter Physics

A Quantum Filter for Improved Spintronics

A precisely engineered material interface can host the spin currents needed for practical spin-based electronics. Read More »

Predicted Noncrystalline Structures Have Bonus Properties
Statistical Physics

Predicted Noncrystalline Structures Have Bonus Properties

Simulations reveal disordered structures that are also surprisingly resistant to impacts and cracks. Read More »

More Articles