Nonreciprocal superconductivity
arXiv:2407.01681 · doi:10.1126/sciadv.adr4817
Abstract
We introduce the notion of nonreciprocal superconductors where inversion and time-reversal symmetries are broken, giving rise to an asymmetric energy dispersion. We demonstrate that nonreciprocal superconductivity can be detected by Andreev reflection. In particular, a transparent junction between a normal metal and a nonreciprocal superconductor generally exhibits an asymmetric current-voltage characteristic, which serves as a defining feature of nonreciprocal superconductivity. Unlike the superconducting diode effects, our detection scheme has the advantage of avoiding large critical currents that turn the superconducting state to normal. Finally, we discuss candidates for nonreciprocal superconductivity, including graphene, UTe2, as well as engineered platforms.
17 pages, 12 figures
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Cited by in corpus (10)
- Band Renormalization, Quarter Metals, and Chiral Superconductivity in Rhombohedral Tetralayer Graphene
- Nonreciprocal superconductivity
- Superconducting diode efficiency from singlet-triplet mixing in disordered systems
- Intrinsic superconducting diode effect and nonreciprocal superconductivity in rhombohedral graphene multilayers
- Josephson Diode Effect from Nonequilibrium Current in a Superconducting Interferometer
- Enhanced Superconducting Diode Effect in the Asymmetric Hatsugai-Kohmoto Model
- Axionic superconductivity from two pairing channels
- Directional conductance of Andreev crystals in hybrid Josephson junction arrays
- Correlated Hopf insulators
- Observation of field-odd and field-free superconducting diode effects in nanoflakes