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Heavy fermions emerge at an atomic-layer interface, unlocking new ways to design quantum materials

Heavy fermions emerge at an atomic-layer interface, unlocking new ways to design quantum materials

phys.org 06.10.2026 17:00 5 views
A research team led by the University of Osaka has directly observed, for the first time, an unusual heavy-fermion state forming at the boundary between a one-atom-thick material and a metal. Such states are closely link

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: A research team led by the University of Osaka has directly observed, for the first time, an unusual heavy-fermion state forming at the boundary between a one-atom-thick material and a metal. Such states are closely linked to exotic quantum phenomena, including unconventional superconductivity, and the finding opens new possibilities for designing quantum materials through their interfaces.

The researchers created a high-quality, one-atom-thick layer of ytterbium–copper (YbCu₂) on a copper crystal and examined how electrons behaved across the interface using intense synchrotron light. Their measurements showed that electrons localized in the atomic layer interact with mobile electrons in the underlying copper to form the heavy-fermion state. The measurements revealed two distinct heavy-fermion states.

One was confined mainly to the two-dimensional YbCu₂ layer, while the other extended into the three-dimensional copper substrate. Crucially, the latter arose from hybridization between localized Yb 4f electrons in the atomic layer and mobile conduction electrons in the underlying copper, providing direct evidence of an interfacial heavy-fermion state. The work is published in the journal Communications Materials.

"This achievement was made possible by our continued efforts to create high-quality materials and measure their electronic states as precisely as possible," says senior author Shin-ichi Kimura, a professor. "Our next goal is to engineer and control such heavy-electron states, opening the way to previously unexplored quantum states, including unconventional superconductivity." The findings suggest that carefully combining atomic layers and substrates could provide a new approach to designing quantum materials. By precisely controlling interfacial structures, electronic orbitals and moiré patterns, researchers may be able to create and tune new low-dimensional quantum phenomena that cannot be realized in conventional materials.

Takuto Nakamura et al, Interfacial heavy fermion formation in a two-dimensional Kondo lattice YbCu2 on Cu(111) substrate, Communications Materials (2026). DOI: 10.1038/s43246-026-01332-5 Journal information: Communications Materials Swati Mestri holds a bachelor's degree in Electronics Engineering and has worked as a content editor since 2019. She has experience editing research documents across technology, health care, and materials science, and has a particular interest in technology and space.

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