News

New nanoscale device for spin technology

Spin waves could unlock the next generation of computer technology, a new component allows physicists to control them
A green laser light shining on a sample stage between two magnets
Magneto-optical microscope used for imaging spin waves in a Fabry-Pérot resonator

Researchers at Aalto University have developed a new device for spintronics. The results have been published in the journal Nature Communications, and mark a step towards the goal of using spintronics to make computer chips and devices for data processing and communication technology that are small and powerful. 

Traditional electronics uses electrical charge to carry out computations that power most of our day-to-day technology. However, engineers are unable to make electronics do calculations faster, as moving charge creates heat, and we’re at the limits of how small and fast chips can get before overheating. Because electronics can’t be made smaller, there are concerns that computers won't be able to get more powerful and cheaper at the same rate they have been for the past 7 decades. This is where spintronics comes in. 

“Spin” is a property of particles like electrons in the same way that “charge” is. Researchers are excited about using spin to carry out computations because it avoids the heating issues of current computer chips. ‘If you use spin waves, it's transfer of spin, you don't move charge, so you don't create heating,’ says Professor Sebastiaan van Dijken, who leads the group that wrote the paper.

Nanoscale magnetic materials

The device the team made is a Fabry-Pérot resonator, a well known tool in optics for creating beams of light with a tightly controlled wavelength. The spin-wave version made by the researchers in this work allows them to control and filter waves of spin in devices that are only a few hundreds of nanometres across.

The devices were made by sandwiching very thin layers of materials with exotic magnetic properties on top of eachother. This created a device where the spin waves in the material would be trapped and cancelled out if they weren’t of the desired frequency. ‘The concept is new, but easy to implement,’ explains Dr Huajun Qin, the first author of the paper, ‘the trick is to make good quality materials, which we have here at Aalto. The fact that it is not challenging to make these devices means we have lots of opportunities for new exciting work.’

Wireless data processing and analogue computing

The issues with speeding up electronics goes beyond overheating, they also cause complications in wireless transmission, as wireless signals need to be converted from their higher frequencies down to frequencies that electronic circuits can manage. This conversion slows the process down, and requires energy. Spin wave chips are able to operate at the microwave frequencies used in mobile phone and wifi signals, which means that there is a lot of potential for them to be used in even faster and more reliable wireless communication technologies in the future. 

Furthermore, spin waves can be used to do computing in ways that are faster that electronic computing at specific tasks ‘Electronic computing uses “Boolean” or Binary logic to do calculations,’ explains Professor van Dijken, ‘with spin waves, the information is carried in the amplitude of the wave, which allows for more analogue style computing. This means that it could be very useful for specific tasks like image processing, or pattern recognition. The great thing about our system is that the size structure of it means that it should be easy to integrate into existing technology’

Now that the team has the resonator to filter and control the spin waves, the next steps are to make a complete circuit for them. “To build a magnetic circuit, we need to be able to guide the spin waves towards functional components, like the way conducting electrical channels do on electronic microchips. We are looking at making similar structures to steer spin waves” explains Dr Qin.

More Information

The paper Nanoscale magnonic Fabry-Pérot resonator for low-loss spin-wave manipulation is published in Nature Communications. https://www.nature.com/articles/s41467-021-22520-6 It was supported by the Academy of Finland and the German Research Foundation. Device fabrication was carried out at OtaNano.

Contact Details

Prof. Sebastiaan van Dijken
E-mail: sebastiaan.van.dijken@aalto.fi
Phone: +358-50-3160969
Website: http://physics.aalto.fi/groups/nanospin/

Dr Huajun Qin
E-mail: huajun.qin@aalto.fi 

  • Updated:
  • Published:
Share
URL copied!

Read more news

Hand holding a white tablet with text on screen, in front of a dark grid wall and bright light strips
Press releases, Research & Art Published:

AI model captures how humans read, paving the way to personalised text and better augmented reality

The new model could hold the key to developing highly customisable applications that adapt to different types of reader
Asst. Prof. Magda Posani presenting the TFK Bio-LCArch project at NSB 2026 in Tampere (Photo taken by A!BP)
Awards and Recognition, Cooperation, Research & Art Published:

International educational project at Aalto University funded by the TFK Programme

The Bio-Design for Low Carbon Architecture (Bio-LCArch) project is a collaborative initiative between Aalto University in Finland and Beijing Jiaotong University in China, geared toward demonstrating how bio-based materials can facilitate the construction industry's transition to net-zero emissions.
Tayma Dadssi presenting her research at the NSB 2026 in Tampere. Photograph taken by Opa Latvala.
Research & Art Published:

A!BP attends the 14th Nordic Symposium on Building Physics

On 08.06-10.06, the A!BP research group attended NSB 2026 in Tampere, contributing to the conference with scientific presentations and collaborative workshops on bio-based materials.
The 3 members from the Kenno team smiling at the camera in a picture selfie style
Campus, Research & Art, University Published:

The company established by three anthropologists relied on strong research expertise

Etnografinen tutkimustoimisto Kenno Oy was established in 2014 when its three founders were finalising their master's degree studies at the University of Helsinki and wanted to create an interesting job for themselves.