Symmetry group analysis partitions 2^n current configurations on an n-terminal ring into orbits labeled by winding number W; for n=3, non-reciprocal responses appear only after simultaneous T and I breaking, with geometry selecting allowed patterns, as shown in a three-quantum-dot superconducting to
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3 Pith papers cite this work. Polarity classification is still indexing.
years
2026 3verdicts
UNVERDICTED 3representative citing papers
Strong correlations in a Josephson junction with odd electrons spontaneously break symmetries to enable zero-field Josephson diode effect without magnetic order.
Non-Hermitian dissipation shifts 0-π transitions in magnetic Josephson junctions to higher fields and enables angle-based control at fixed magnitude via complex eigenvalues of the effective Hamiltonian.
citing papers explorer
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Symmetry Classification of Non-Reciprocal Responses in Multiterminal Ring Devices
Symmetry group analysis partitions 2^n current configurations on an n-terminal ring into orbits labeled by winding number W; for n=3, non-reciprocal responses appear only after simultaneous T and I breaking, with geometry selecting allowed patterns, as shown in a three-quantum-dot superconducting to
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Strong Correlation Drives Zero-Field Josephson Diode Effect
Strong correlations in a Josephson junction with odd electrons spontaneously break symmetries to enable zero-field Josephson diode effect without magnetic order.
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$0-\pi$ transitions in non-Hermitian magnetic Josephson junctions
Non-Hermitian dissipation shifts 0-π transitions in magnetic Josephson junctions to higher fields and enables angle-based control at fixed magnitude via complex eigenvalues of the effective Hamiltonian.