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Quantum-Material Josephson Junctions: UnconventionalBarriers, Emerging Functionality

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Authors: Kathryn A. Pitton, Michiel P. Dubbelman, Trent M. Kyrk, Houssam El Mrabet Haje, Yaozu Tang, Roald J. H. van der Kolk, Yaroslav M. Blanter, Mazhar N Ali

Year

2026

Paper ID

77707

Status

Peer-reviewed

Abstract Read

~2 min

Abstract Words

142

Citations

N/A

Abstract

Abstract Josephson junctions translate quantum phase coherence into an electrical response and underpin superconducting sensors and quantum circuits. In conventional junctions, the barrier acts primarily as a passive weak link; however, when the barrier is a quantum material with its own internal degrees of freedom like magnetism, strong correlations, or switchable polarization, the Josephson effect becomes a sensitive probe of symmetry and many-body physics in the interlayer. Here we review progress in “quantum-material Josephson junctions” (QMJJ), focusing on three rapidly advancing barrier families: (1) magnetic barriers, where exchange, noncollinearity, and spin-active scattering enable 0−π–φ ground states, singlet–triplet conversion, and nonreciprocal transport; (2) correlated barriers, where proximity effects acquire many-body character and recent van der Waals Kagome Mott interlayers exhibit field-free Josephson diode behavior; and (3) ferroelectric and multiferroic barriers, where nonvolatile polarization provides an internal control knob and can produce superconducting memory and memristive dynamics.

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  • This paper contributes to the Superconducting Qubits research area in the Quantum Articles archive.
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  • Abstract Josephson junctions translate quantum phase coherence into an electrical response and underpin superconducting sensors and quantum circuits.

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