色色啦

News

Time crystals could power future quantum computers

A time crystal, a long-life quantum system approaching perpetual motion, has been hooked up to its environment for the first time, unlocking an intriguing way to increase quantum computational and sensing power.
Close-up of a complex scientific instrument with golden components and various wires, in a laboratory setting.
Photo: Mikko Raskinen/Aalto University.

A glittering hunk of crystal gets its iridescence from a highly regular atomic structure.  Frank Wilczek, the 2012 Nobel Laureate in Physics, proposed quantum systems 鈥撯 like groups of particles 鈥撯 could construct themselves in the same way, but in time instead of space. He dubbed such systems time crystals, defining them by their lowest possible energy state, which perpetually repeats movements without external energy input. Time crystals were experimentally proved to exist in 2016.

Now researchers at Aalto University鈥檚 Department of Applied Physics have, for the first time, connected a time crystal to another system external from itself. The study, first-authored by Academy Research Fellow Jere M盲kinen, describes how the team turned a time crystal into an optomechanical system that could be used to develop things like extremely accurate sensors or memory systems for quantum computers, significantly boosting their power.

The study was published in Nature Communications: .

鈥楶erpetual motion is possible in the quantum realm so long as it is not disturbed by external energy input, such as by observing it. That is why a time crystal had never before been connected to any external system,鈥 M盲kinen says. 鈥楤ut we did just that and showed, also for the first time, that you can adjust the crystal鈥檚 properties using this method.鈥 

Diagram of a time crystal system with pinch coils, RF drive and detection, and energy curves labelled Zeeman and spin-orbit.
The experimental setup in which a time crystal formed on top of a superfluid. Image: Jere M盲kinen/Aalto University.

The physicists used radio waves to pump magnons into a Helium-3 superfluid cooled to near-absolute zero. Magnons are quasiparticles, i.e. groups of particles behaving as if they were individual particles instead. When the team turned off the pump, the magnons formed a time crystal that stayed in motion for unprecedentedly long, lasting up to 10cycles or several minutes before fading down to a level the researchers could no longer observe. During the fading process the time crystal connected itself to a nearby mechanical oscillator in a way determined by the oscillator鈥檚 frequency and amplitude.

鈥榃e showed that changes in the time crystal鈥檚 frequency are completely analogous to optomechanical phenomena widely known in physics. These are the same phenomena that are used, for example, in detecting gravitational waves at the Laser Interferometer Gravitational-Wave Observatory in the U.S. By reducing the energy loss and increasing the frequency of that mechanical oscillator our setup could be optimized to reach down near the border of the quantum realm,鈥 M盲kinen says.

Time crystals could be used to drastically increase quantum computing and sensing power.

鈥楾ime crystals last for orders of magnitude longer than the quantum systems currently used in quantum computing. The best-case scenario is that time crystals could power the memory systems of quantum computers to significantly improve them. They could also be used as frequency combs which are employed in extremely high-sensitivity measurement devices as frequency references, says M盲kinen.鈥

The researchers used the facilities of the Low Temperature Laboratory, which is part of OtaNano, the Finnish national research infrastructure for nano-, micro- and quantum technologies, and the calculational facilities of the Aalto Science-IT project.

More information:

QTF-hero logo

The national Quantum Technology Finland (QTF) Centre of Excellence brings together scientific and technological excellence and cutting-edge research infrastructures to harness quantum phenomena in solid-state-based quantum devices and applications.

Kuvaa laitteittosta Aalto-yliopsiton Kylm盲laboratoriossa.

Perpetual motion is possible 鈥 Scientists at Aalto University鈥檚 Low Temperature Lab observed the interaction of two time-crystals that bend the laws of physics

Time-crystals are a phase of matter in which the particles more in a perpetually repeating cycle with no external input of energy. Researchers were able to create two time-crystals at Aalto University鈥檚 Low Temperature Lab and observe their interaction. In the future, time-crystals might have applications in devices such as quantum computer memory components.

News
  • Updated:
  • Published:
Share
URL copied!

Read more news

Winners on stage for the EAA best student paper award
Awards and Recognition, Research & Art Published:

EAA Best Paper and Presentation Award for Young Researchers for postdoctoral researcher Thomas Deppisch

The awarded work shows how speech can be made clearer in noisy environments while still preserving directional cues
Woman sitting in a clear bubble chair beside a bright sign reading 鈥淢ade in Aalto University鈥 in a dark room
Research & Art Published:

Six Aalto鈥檚 fields rank among the world鈥檚 top 100 in ShanghaiRanking

The comparison assesses research quality and impact, research excellence, international collaboration, academic recognition and leadership
Smiling woman with wavy dark hair and glasses, in dark clothes, indoors with blurred wooden wall behind.
Press releases, Research & Art Published:

Doctoral thesis: A film director doesn鈥檛 just lead the vision 鈥 the creative team also needs leadership

Hanna Maylett鈥檚 dissertation, to be examined at Aalto University, identifies two intertwined dimensions in a film director鈥檚 artistic leadership: the regulation of the work鈥檚 content and the social processes within the production team.
Black and white double exposure of a bearded man in a suit and tie, looking serious at the camera
Aalto Magazine, Research & Art Published:

Everyday choices: Ghassem Gozaliasl, how do galaxy groups reflect the need for human connection?

An astrophysicist with the Aalto High-Performance Computing Lab (HPCLab), Gozaliasl uses the James Webb Telescope to study how galaxies have formed over the last 12 billion years.