In situ tunable superconducting diode enabling field free operation with infinite nonreciprocity

Abstract Efficient, scalable, and magnetic-field-free superconducting diodes are essential for future superconducting electronics; yet, despite significant efforts, such practical devices remain unrealized. The main challenge lies in achieving broad-range in-situ tunability, both for optimization and for achieving transistor-like operation. Here, we study diodes based on four-terminal niobium planar Josephson junctions. We show that the multiterminal structure eliminates the need for an external magnetic field and enables essentially unrestricted in-situ tunability, along with reconfigurability of the diode polarity, leading to advanced functionality. For example, we demonstrate that such diodes can operate as Gauss neurons via reentrant superconductivity. By deliberately tuning the junction parameters, we obtain effectively infinite nonreciprocity (within experimental resolution) leading to threshold-free ac-current rectification. Such technologically simple, reconfigurable, and broadly tunable diodes could be instrumental for future digital and neuromorphic computing.

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Publication Details

Journal
Communications Physics
Published
2026-10-01
DOI
https://doi.org/10.1038/s42005-026-02904-0
Primary Topic
Topological Materials and Phenomena
Type
article
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article

In situ tunable superconducting diode enabling field free operation with infinite nonreciprocity

Amirreza Lotfian, Razmik A. Hovhannisyan, V. M. Krasnov, T. Golod
Communications Physics
Topological Materials and Phenomena
article

In situ tunable superconducting diode enabling field free operation with infinite nonreciprocity

Amirreza Lotfian, Razmik A. Hovhannisyan, V. M. Krasnov, T. Golod
article en

Abstract

Abstract Efficient, scalable, and magnetic-field-free superconducting diodes are essential for future superconducting electronics; yet, despite significant efforts, such practical devices remain unrealized. The main challenge lies in achieving broad-range in-situ tunability, both for optimization and for achieving transistor-like operation. Here, we study diodes based on four-terminal niobium planar Josephson junctions. We show that the multiterminal structure eliminates the need for an external magnetic field and enables essentially unrestricted in-situ tunability, along with reconfigurability of the diode polarity, leading to advanced functionality. For example, we demonstrate that such diodes can operate as Gauss neurons via reentrant superconductivity. By deliberately tuning the junction parameters, we obtain effectively infinite nonreciprocity (within experimental resolution) leading to threshold-free ac-current rectification. Such technologically simple, reconfigurable, and broadly tunable diodes could be instrumental for future digital and neuromorphic computing.

Communications PhysicsVol. 9(1)
Stockholm University (SE), AlbaNova (SE)
Openalex Percentile: Top 14%
Topological Materials and Phenomena
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In situ tunable superconducting diode enabling field free operation with infinite nonreciprocity — Amirreza Lotfian, Razmik A. Hovhannisyan, et al. · Communications Physics (2026) | TGRS Research Map | TGRS