arXiv · 2508.06083
Scalable High-Temperature Superconducting Diodes in Intrinsic Josephson Junctions
Abstract
Superconducting diodes, characterized by nonreciprocal supercurrent transport, offer transformative opportunities for ultra-low-power circuits. However, achieving reliable operation at temperatures above liquid nitrogen remains a major challenge, limiting their practical applicability. Here, we present a scalable strategy for high-temperature superconducting diodes based on intrinsic Josephson junctions naturally present in a cuprate superconductor. We demonstrate that strong nonreciprocity arises not only from broken spatial and time-reversal symmetries, but also from enhanced anharmonicity in the current-phase relation, enabled by the atomically thin barrier of the intrinsic junction. The diode efficiency strongly depends on the number of stacked intrinsic junctions, with the highest efficiency occurring in single-junction devices. Notably, these high-temperature superconducting diodes are readily scalable to large arrays, marking a critical step toward practical implementation in energy-efficient computing architectures.
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Zihan Wei, Youkai Qiao, Yang-Yang Lyu, Da Wang, Tianyu Li, Leonardo Rodrigues Cadorim, Ping Zhang, Wen-Cheng Yue, Dingding Li, Ziyu Song, Zixi Wang, Yunfan Wang, Milorad V. Milošević, Yong-Lei Wang, Huabing Wang, Peiheng Wu. 2025-08-08. Scalable High-Temperature Superconducting Diodes in Intrinsic Josephson Junctions. https://arxiv.org/abs/2508.06083
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