Realisation of de Gennes’ absolute superconducting switch with a heavy metal interface

Journal Article (2025)
Author(s)

Hisakazu Matsuki (University of Cambridge)

Alberto Hijano (University of Jyväskylä, University of the Basque Country, Centro Mixto CSIC-UPV/EHU)

Grzegorz P. Mazur (TU Delft - QRD/Wimmer Group, Kavli institute of nanoscience Delft, University of Cambridge)

Stefan Ilić (University of Jyväskylä, Centro Mixto CSIC-UPV/EHU)

Binbin Wang (The Ohio State University)

Iuliia Alekhina (University of Cambridge)

Kohei Ohnishi (Kindai University)

Sachio Komori (Nagoya University)

Yang Li (University of Cambridge)

undefined More Authors (External organisation)

Research Group
QRD/Wimmer Group
DOI related publication
https://doi.org/10.1038/s41467-025-61267-2 Final published version
More Info
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Publication Year
2025
Language
English
Research Group
QRD/Wimmer Group
Journal title
Nature Communications
Issue number
1
Volume number
16
Article number
5674
Downloads counter
165
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Abstract

In 1966, Pierre-Gilles de Gennes proposed a non-volatile mechanism for switching superconductivity on and off in a magnetic device. This involved a superconductor (S) sandwiched between ferromagnetic (F) insulators in which the net magnetic exchange field could be controlled through the magnetisation-orientation of the F layers. Because superconducting switches are attractive for a range of applications, extensive studies have been carried out on F/S/F structures. Although these have demonstrated a sensitivity of the superconducting critical temperature (Tc) to parallel (P) and antiparallel (AP) magnetisation-orientations of the F layers, corresponding shifts in Tc (i.e. ΔTc = Tc,AP− Tc,P) are lower than predicted with ΔTc only a small fraction of Tc,AP, precluding the development of applications. Here, we report EuS/Au/Nb/EuS structures where EuS is an insulating ferromagnet, Nb is a superconductor and Au is a heavy metal. For P magnetisations, the superconducting state in this structure is quenched down to the lowest measured temperature of 20 mK meaning that ΔTc/Tc,AP is practically 1. The key to this so-called 'absolute switching' effect is a sizable spin-mixing conductance at the EuS/Au interface which ensures a robust magnetic proximity effect, unlocking the potential of F/S/F switches for low power electronics.