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'Singing' electrons synchronize in Kagome crystals, revealing geometry-driven quantum coherence

Phys.org Quantum Section
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⚡ Quantum Brief
Max Planck physicists discovered electrons in Kagome crystals synchronize into a collective quantum state, forming coherent "songs" that adapt to the crystal’s geometric shape, defying typical single-particle behavior. The team observed Aharonov–Bohm-like oscillations in CsV₃Sb₅, proving electrons interfere collectively—unexpected in non-superconducting materials—with coherence persisting far beyond normal limits. Electron synchronization mirrored the crystal’s geometry: rectangular samples oscillated at 90°, while parallelograms followed 60°/120° angles, suggesting electrons "sense" and adapt to structural boundaries. This reveals geometry as a tunable control for quantum coherence, shifting material design from chemical composition to architectural shaping—a potential breakthrough for quantum device engineering. Published in Nature, the findings propose a new paradigm where material structure, not just chemistry, dictates quantum behavior, paving the way for geometry-driven quantum technologies.
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October 30, 2025 by Marius Hoffmann, Max Planck Society edited by Lisa Lock, reviewed by Robert Egan 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 Physicists at the Max Planck Institute for the Structure and Dynamics of Matter (MPSD) in Hamburg have discovered a striking new form of quantum behavior. In star-shaped Kagome crystals—named after a traditional Japanese bamboo-basket woven pattern—electrons that usually act like a noisy crowd suddenly synchronize, forming a collective "song" that evolves with the crystal's shape. The study, published in Nature, reveals that geometry itself can tune quantum coherence, opening new possibilities to develop materials where form defines function.Quantum coherence—the ability of particles to move in synchrony like overlapping waves—is usually limited to exotic states such as superconductivity, where electrons pair up and flow coherently. In ordinary metals, collisions quickly destroy such coherence.But in the Kagome metal CsV₃Sb₅, after sculpting tiny crystalline pillars just a few micrometers across and applying magnetic fields, the MPSD team observed Aharonov–Bohm-like oscillations in electrical resistance. Thus showing that electrons were interfering collectively, remaining coherent far beyond what single-particle physics would allow."This is not what non-interacting electrons should be able to do," says Chunyu Guo, the study's lead author. "It points to a coherent many-body state."Even more surprisingly, the oscillations depended on the crystal's geometry. Rectangular samples switched patterns at right angles, while parallelograms did so at 60° and 120°—exactly matching their geometry. "It's as if the electrons know whether they're in a rectangle or a parallelogram," explains Philip Moll, the responsible MPSD Director. "They're singing in harmony—and the song changes with the room they're in."The discovery suggests a new way to control quantum states: by sculpting the geometry of a material. If coherence can be shaped rather than merely observed, researchers could design materials that behave like tuned instruments—where structure, not just chemistry, defines their resonance. "Kagome metals are giving us a glimpse of coherence that is both robust and shape-sensitive," says Moll. "It's a new design principle we didn't expect."The Kagome lattice has long intrigued scientists due to its intricate design of interwoven triangles and hexagons, which often geometrically frustrate electrons and give rise to exotic phases of matter.The recent findings by the Hamburg team extends this effects from the atomic level to the scale of devices, demonstrating that geometry influences the collective quantum behavior of electrons. Much like a choir resonates differently in a cathedral than in a concert hall, electrons in these star-shaped crystals seem to produce a new sound—one influenced not just by the arrangement of atoms but also by their shape.Currently, this phenomenon is limited to laboratory settings, where focused ion beams shape crystals into micrometer-sized pillars. However, the implications of this research are far-reaching. "Once coherence can be shaped rather than merely discovered, the frontier of quantum materials could shift from chemistry to architecture," says Guo."It opens a new avenue of designing quantum functionality for future electronics by reshaping material geometry."More information: Chunyu Guo et al, Many-body interference in kagome crystals, Nature (2025). DOI: 10.1038/s41586-025-09659-8 Journal information: Nature Provided by Max Planck Society Nov 1, 20250Nov 1, 20250Nov 1, 20250Oct 31, 20253Oct 31, 202502 hours ago22 hours ago22 hours agoNov 1, 2025Nov 1, 2025Nov 1, 2025Nov 1, 2025Nov 1, 2025Nov 1, 2025Nov 1, 2025Sep 30, 2025Sep 2, 2025May 17, 2019Aug 5, 2025Aug 16, 2025Jun 12, 2020Oct 31, 2025Oct 31, 2025Oct 31, 2025Oct 30, 2025Oct 30, 2025Oct 30, 2025

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