麻豆淫院

March 31, 2025

The hidden superconducting state in NbSe鈧�: Shedding layers and gaining insights

A schematic illustration of the experimental setup shows a scanning magnetic microscope positioned above two different samples. One sample exhibits only surface superconductivity, while the other displays conventional superconductivity. Credit: Ori Lerman
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A schematic illustration of the experimental setup shows a scanning magnetic microscope positioned above two different samples. One sample exhibits only surface superconductivity, while the other displays conventional superconductivity. Credit: Ori Lerman

Researchers have discovered an unexpected superconducting transition in extremely thin films of niobium diselenide (NbSe2). Publishing in Nature Communications, they found that when these films become thinner than six atomic layers, superconductivity no longer spreads evenly throughout the material, but instead becomes confined to its surface.

This discovery challenges previous assumptions and could have important implications for understanding and developing advanced quantum technologies.

Researchers at the Hebrew University of Jerusalem have made a surprising discovery about how superconductivity behaves in extremely thin materials. Superconductors are materials that allow electric current to flow without resistance, which makes them incredibly valuable for technology. Usually, the properties of superconductors change predictably when the materials become thinner; however, this study found something unexpected.

The team, led by Ph.D. student Nofar Fridman, under the guidance of Prof. Yonathan Anahory from the Racah Institute of 麻豆淫院ics and the Nano Center at Hebrew University looked closely at thin films made from niobium diselenide (NbSe2), a special type of layered superconducting material, which can be assembled into structures where thickness is precisely controlled down to the few layer limit.

By using advanced magnetic imaging techniques, the researchers measured how these materials respond to magnetic fields as their thickness decreased.

Typically, scientists expect the ability of a superconducting material to expel magnetic fields to become stronger as the material becomes thicker. Here, this length is gauged by a physical property called the Pearl length. This study confirmed that rule for samples thicker than ten .

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However, when the films became extremely thin鈥攋ust three to six layers (2鈥�4 nm)鈥攖he researchers observed something unexpected: the Pearl length sharply increased and became thickness independent, breaking the expected pattern.

"Our findings reveal something completely unexpected that could be ubiquitous in superconducting materials," explained Nofar Fridman, the Ph.D. student leading the study.

"In very thin samples, superconductivity behaves differently from what we've known. It seems that below a certain thickness, superconductors host current mostly at their top and bottom surfaces, rather than throughout their volume. This finding opens up exciting new questions about superconductivity in ultra-thin materials."

The team's supervisor, Prof. Yonathan Anahory emphasized the importance of their method, saying, "Our high-resolution magnetic imaging allowed us to see details that previous methods couldn't detect.

"By finding this unique surface superconductivity, we've expanded our understanding of how superconducting materials behave at extremely small scales. This could have significant implications for future research and technologies."

This discovery sheds new light on superconductivity in very thin films and challenges previously held theories. It also highlights how specialized measurement techniques can uncover surprising new physical phenomena, potentially opening avenues for innovative applications in quantum technology.

More information: Anomalous Thickness Dependence of the Vortex Pearl Length in Few-Layer NbSe鈧�, Nature Communications (2025).

Journal information: Nature Communications

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Extremely thin films of niobium diselenide (NbSe2) exhibit a unique superconducting state, where superconductivity is confined to the surface rather than spreading throughout the material. This occurs when the films are thinner than six atomic layers, defying previous assumptions. The findings, obtained through advanced magnetic imaging, suggest new insights into superconductivity and potential applications in quantum technologies.

This summary was automatically generated using LLM.