Time crystals could power future quantum computers
Understand this faster with AI
October 16, 2025 The GIST Time crystals could power future quantum computers by Aalto University edited by Sadie Harley, reviewed by Robert Egan Sadie Harley scientific editor Meet our editorial team Behind our editorial process Robert Egan associate editor Meet our editorial team Behind our editorial process Editors' notes This article has been reviewed according to Science X's editorial process and policies. Editors have highlighted the following attributes while ensuring the content's credibility: fact-checked peer-reviewed publication trusted source proofread A time crystal formed on top of a superfluid in ultracold conditions. Credit: 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––like groups of particles––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's 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 Mäkinen, 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 is published in Nature Communications . "Perpetual 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," Mäkinen says. "But we did just that and showed, also for the first time, that you can adjust the crystal's properties using this method." 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 108 cycles 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's frequency and amplitude. "We showed that changes in the time crystal's 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," Mäkinen says. Time crystals could be used to drastically increase quantum computing and sensing power. "Time 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 Mäkinen. More information: Jere Mäkinen et al, Continuous time crystal coupled to a mechanical mode as a cavity-optomechanics-like platform, Nature Communications (2025). DOI: 10.1038/s41467-025-64673-8. www.nature.com/articles/s41467-025-64673-8 Journal information: Nature Communications Provided by Aalto University Citation: Time crystals could power future quantum computers (2025, October 16) retrieved 24 October 2025 from https://phys.org/news/2025-10-crystals-power-future-quantum.html This document is subject to copyright. Apart from any fair dealing for the purpose of private study or research, no part may be reproduced without the written permission. The content is provided for information purposes only. Emission cuts before mid-century could prevent 0.6 meters of future sea-level rise 9 minutes ago Gene variant that protects against norovirus spread with arrival of agriculture, prehistoric DNA reveals 1 hour ago Flexible fitting method translates high-speed atomic force microscopy images into precise protein motion models 3 hours ago The search for neutrinoless double beta decay gets some noise cancelling headphones 11 hours ago Common crystal proves ideal for low-temperature light technology 11 hours ago Forests recovering from acid rain mine rocks for nutrients, long-term study reveals 12 hours ago Microscopic 'ocean' on a chip reveals new nonlinear wave behavior 12 hours ago First high-resolution structure of key herpes virus protein opens path to new antivirals 12 hours ago 'Molecular dam' stops energy leaks in nanocrystals to boost efficiency of light-driven reactions 12 hours ago A reusable, washable nanofiber membrane can filter water sustainably 12 hours ago Time crystals arise from quantum interactions once thought to prevent their formation Sep 22, 2025 Time crystals 'impossible' but obey quantum physics Jun 2, 2022 Using lasers to bring crystal vibrations to their quantum ground state Aug 15, 2025 Using sound to remember quantum information 30 times longer Aug 13, 2025 Controlling quantum particle states through structural phase transition of crystals Apr 9, 2025 Observing time crystals on a quantum computer Mar 3, 2022 Simulations hint at new strongly correlated states of matter in ultracold polar molecules 18 hours ago Microscopic 'ocean' on a chip reveals new nonlinear wave behavior 12 hours ago Scientists create a new form of light matter in a quasicrystal 20 hours ago Supersolid spins into synchrony, unlocking quantum insights Oct 23, 2025 Light particles prefer company: Photons exhibit collective behavior only after reaching certain threshold Oct 22, 2025 A 'seating chart' for atoms helps locate their positions in materials Oct 22, 2025
Tags
Source Information
Discussion
0 professional contributions
Sign in to join this professional discussion.
Be the first to add a constructive contribution.
