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The optical glow of quantum crystals

Wigner

The researchers used light to reveal the collective motion of electrons forming a Wigner crystal. (Illustration: Enrique Sahagún, Scixel / University of Basel, Department of Physics)

The group of BQC Prof. Tomasz Smoleński at the University of Basel, together with researchers from the Technical University of Munich, has found a new way to observe the collective motion of electrons in one of the most elusive states of matter: the Wigner crystal. Using light, the team was able to reveal properties of this fragile quantum state that had remained out of reach until now.

The team of Professor Tomasz Smoleński published their study in Nature Physics, in which they investigated a single atomic layer of tungsten diselenide cooled to just a few degrees above absolute zero. By illuminating the material and measuring the reflected light, the researchers observed new optical features that reveal the collective behavior of electrons within a Wigner crystal.

These features arise from a subtle interplay between light-generated excitations in the material, known as excitons, and the ordered arrangement of electrons. The resulting hybrid quasiparticles, called Wigner crystal polarons, act as highly sensitive optical probe of the crystal and its collective dynamics.

“Our measurements show that light can do more than simply detect the presence of this exotic state—it can reveal how the state behaves internally,” says first author Dr. Lujun Wang from the University of Basel, who carried out the experiments together with Ferdinand Menzel, a PhD student in Smoleński’s group.

“This gives us a powerful new tool for studying collective excitations of electronic crystals that would otherwise be extremely difficult to access,” adds Smoleński.

The researchers also found that the strength of the interactions among the electrons shapes these optical signatures. This makes them particularly valuable for exploring the fundamental physics of strongly correlated systems, whose properties arise from the collective behavior of many interacting particles.

To explain the experimental results, theorists led by Professor Michael Knap at the Technical University of Munich (TUM) developed a theoretical description of how Wigner crystal polarons emerge from the coupling between optically generated excitons and the collective motion of electrons in the crystal.

“What is particularly exciting is that these signals carry information not only about how the electrons are arranged, but also about their quantum dynamics,” explains Fabian Pichler, a PhD student at TUM. “This allows us to connect the experimental observations directly to the underlying many-body physics.”

The results show that atomically thin materials offer a promising platform for visualizing the collective motion of electrons in ordered quantum states. This opens up new possibilities for gaining a better understanding of the internal dynamics of strongly correlated matter.

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