Current Induced Hidden States in Josephson Junctions
arXiv:2402.02472 · doi:10.1038/s41467-024-52271-z
Abstract
Josephson junctions enable dissipation-less electrical current through metals and insulators below a critical current. Despite being central to quantum technology based on superconducting quantum bits and fundamental research into self-conjugate quasiparticles, the spatial distribution of super current flow at the junction and its predicted evolution with current bias and external magnetic field remain experimentally elusive. Revealing the hidden current flow, featureless in electrical resistance, helps understanding unconventional phenomena such as the nonreciprocal critical current, i.e., Josephson diode effect. Here we introduce a platform to visualize super current flow at the nanoscale. Utilizing a scanning magnetometer based on nitrogen vacancy centers in diamond, we uncover competing ground states electrically switchable within the zero-resistance regime. The competition results from the superconducting phase re-configuration induced by the Josephson current and kinetic inductance of thin-film superconductors. We further identify a new mechanism for the Josephson diode effect involving the Josephson current induced phase. The nanoscale super current flow emerges as a new experimental observable for elucidating unconventional superconductivity, and optimizing quantum computation and energy-efficient devices.
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Cited by in corpus (6)
- The hybrid Josephson rhombus: A superconducting element with tailored current-phase relation
- Current Conservation in the Self-Consistent Josephson Junction
- Diode effect in the Fraunhofer pattern of disordered planar Josephson junctions
- Planar Josephson junctions for sensors and electronics:Different geometry, new functionality
- Omnidirectional magnetic imaging of magnetic anisotropy and phase transitions
- Intrinsic space-time crystalline order in a hybrid Josephson junction