High‐Field Robust and Polarity‐Reversible Superconducting Diode Effect in a Superconductor/Ferromagnet Heterostructure

ABSTRACT The superconducting diode effect (SDE), characterized by nonreciprocal critical supercurrents, plays a key role for next‐generation dissipationless electronics. Typically, the SDE requires external magnetic fields to break time‐reversal symmetry, limiting its practical applications. Superconductor/ferromagnet heterostructures offer an alternative way to enable field‐free nonreciprocal transport by using magnetic proximity effects to break time‐reversal symmetry. However, the SDE in these cases generally show a fixed sign of the critical current asymmetry, without any polarity reversal. Therefore, a polarity‐reversible SDE with a sign‐switchable critical current difference remains unexplored. Here, we demonstrate a high‐field robust and polarity‐reversible SDE in a van der Waals FeSeTe/Fe 3 GaTe 2 heterostructure. We found that, even though the pristine FeSeTe shows no diode response, the heterostructure exhibits a pronounced zero‐field SDE arising from proximity‐induced time‐reversal symmetry breaking. Notably, the diode polarity can be effectively switched by both temperature and magnetic field. Strikingly, the SDE persists under magnetic fields of up to 10 T, exceeding the operational limits of most reported SDE platforms. These results establish such heterostructures as a versatile materials platform for high‐field and polarity‐reversible superconducting diodes for low‐dissipation rectifiers and superconducting logic devices.

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Publication Details

Journal
Advanced Materials
Published
2026-10-06
DOI
https://doi.org/10.1002/adma.75243
Primary Topic
Physics of Superconductivity and Magnetism
Type
article
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article

High‐Field Robust and Polarity‐Reversible Superconducting Diode Effect in a Superconductor/Ferromagnet Heterostructure

Yang‐Yang Lv, Xiangyu Bi, Kun Zhai, Yong Jiang et al.
Advanced Materials
Physics of Superconductivity and Magnetism
article

High‐Field Robust and Polarity‐Reversible Superconducting Diode Effect in a Superconductor/Ferromagnet Heterostructure

Yang‐Yang Lv, Xiangyu Bi, Kun Zhai, Yong Jiang, Junwei Huang, Xiaohong Xu, Weifeng Xu, Hongtao Yuan, Tianyu Xue, Xiaoxue Zhu, Wuhong Xue, Zhiyan Jia, Qizheng Sun
article en

Abstract

ABSTRACT The superconducting diode effect (SDE), characterized by nonreciprocal critical supercurrents, plays a key role for next‐generation dissipationless electronics. Typically, the SDE requires external magnetic fields to break time‐reversal symmetry, limiting its practical applications. Superconductor/ferromagnet heterostructures offer an alternative way to enable field‐free nonreciprocal transport by using magnetic proximity effects to break time‐reversal symmetry. However, the SDE in these cases generally show a fixed sign of the critical current asymmetry, without any polarity reversal. Therefore, a polarity‐reversible SDE with a sign‐switchable critical current difference remains unexplored. Here, we demonstrate a high‐field robust and polarity‐reversible SDE in a van der Waals FeSeTe/Fe 3 GaTe 2 heterostructure. We found that, even though the pristine FeSeTe shows no diode response, the heterostructure exhibits a pronounced zero‐field SDE arising from proximity‐induced time‐reversal symmetry breaking. Notably, the diode polarity can be effectively switched by both temperature and magnetic field. Strikingly, the SDE persists under magnetic fields of up to 10 T, exceeding the operational limits of most reported SDE platforms. These results establish such heterostructures as a versatile materials platform for high‐field and polarity‐reversible superconducting diodes for low‐dissipation rectifiers and superconducting logic devices.

Advanced Materials
Tiangong University (CN), Nanjing University of Information Science and Technology (CN), Suzhou University of Science and Technology (CN), Yanshan University (CN), Collaborative Innovation Center of Advanced Microstructures (CN), National Laboratory of Solid State Microstructures, Nanjing University (CN), Shanxi Normal University (CN)
Openalex Percentile: Top 22%
Physics of Superconductivity and Magnetism
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