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Distant time crystals can somehow fall into the same rhythm

Distant time crystals can somehow fall into the same rhythm

sciencedaily.com 24.09.2026 15:16 1 views
Researchers have shown that multiple time crystals inside a semiconductor can synchronize their oscillations, much like pendulum clocks gradually falling into the same rhythm. The coupling is carried by spin-polarized el

Physicists at TU Dortmund University showed in January 2024 that a continuous time crystal could persist inside a semiconductor, with its oscillations remaining stable for hours. Now, in a new study published inNature Communications, Prof. Alex Greilich and his colleagues have found that multiple time crystals can emerge within the same material and synchronize their electron-nuclear spin oscillations.

Time crystals are unusual physical systems whose internal behavior repeats in a regular rhythm over time, even though they are not being driven by a repeating external signal. In the TU Dortmund experiments, the time crystals form inside a semiconductor made from gallium arsenide with small amounts of indium and silicon. These added elements create localized electrons within the material.

At temperatures close to -270 °C, each electron interacts with roughly one million nearby nuclear spins. To initiate the process, the researchers use a pump laser to align the electron spins. The electrons then transfer their polarization to the surrounding nuclear spins.

When a weak magnetic field is applied, the polarization of those nuclear spins begins to rotate. Feedback between the electron spins and nuclear spins keeps the oscillations going. A second laser allows the researchers to monitor how those oscillations develop over time.

Different regions of the semiconductor are not perfectly identical at the microscopic level. Because of these local variations, time crystals that form in separate areas would normally oscillate at slightly different frequencies. That changes when the researchers illuminate many regions at once with a broad laser beam.

Under those conditions, the separate oscillations can lock together and begin operating at the same frequency. The effect is reminiscent of an observation made by Christiaan Huygens in 1665 involving two pendulum clocks. Huygens noticed that clocks attached to the same support could gradually synchronize because of the weak mechanical interaction transmitted through that shared structure.

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