Using powerful lasers, there is now a new way to recognize currents of spinning electrons within a semiconductor, which could lead to the development of superior computers and electronics.
βThe goal is to replace everything β from computers to memory devices β to have higher performance and less energy consumption,β said Hui Zhao, assistant professor of physics and astronomy at the University of Kansas. Zhao made the discovery with graduate student Lalani Werake.
Future advancements to microchips would require a different approach for transmitting the sequences of ones and zeros that make up digital information, Zhao said.

Hui Zhao, assistant professor of physics and astronomy at Kansas, goes over an experiment.
βWe have been using the charge of the electron for several decades,β Zhao said. βBut right now the size of each device is just 30 to 50 nanometers, and you donβt have many atoms remaining on that tiny scale. We canβt continue that way anymore because weβre hitting a fundamental limit.β
Instead of using the presence or absence of electronic charges, spintronics relies on the direction of an electronβs rotation to convey data.
βRoughly speaking, an electron can be viewed as a tiny ball that spins like a baseball,β said Zhao. βThe difference is that a baseball can spin at any speed, but an electron can only spin at a certain speed β either counterclockwise or clockwise. Therefore, we can use one spin state to represent βzeroβ and another to represent βone.β Because a single electron can carry this information, this takes much less time and much less energy.β
However, one major hurdle for spintronics researchers has been the difficulty in detecting the flow of spinning electrons in real time.
βWe havenβt been able to monitor the velocity of those spinning electrons, but velocity is associated with the spin current,β Zhao said. βSo thereβs been no way to directly detect the spin current so far.β
The discovery by Zhao and Werake changes that. They found by shining a laser beam on a piece of semiconductor generates different color lights if the spinning electrons are flowing, and the brightness of the new light relates to the strength of the spin current.
The optical effect, known as βsecond-harmonic generation,β can monitor spin-current in real time without altering the current itself. Zhao compares his new method with a police officerβs radar gun, which tracks a carβs speed as it passes.
This vastly improves upon spin-current analysis now in use, which Zhao said is akin to analyzing still photographs to determine a carβs speed, long after the car has sped away.
βSpintronics is still in the research phase, and we hope that this new technology can be used in labs to look at problems that interest researchers,β said Zhao. βAs spintronics become industrialized, we expect this could become a routine technique to check the quality of devices, for example.β
