Limitations of the current-phase relation measurements by an asymmetric dc-SQUID
arXiv:2302.02705 · doi:10.1021/acs.nanolett.3c01970
Abstract
Exotic quantum transport phenomena established in Josephson junctions (JJs) are reflected by a non-sinusoidal current-phase relation (CPR). The solidified approach to measure the CPR is via an asymmetric dc-SQUID with a reference JJ that has a high critical current. We probed this method by measuring CPRs of hybrid JJs based on a 3D topological insulator (TI) BiTeSe with a nanobridge acting as a reference JJ. We captured both highly skewed and sinusoidal critical current oscillations within single devices which contradicts the uniqueness of the CPR. This implies that the widely used method provides inaccurate CPR measurement and leads to misinterpretation. It was shown that the accuracy of the CPR measurement is mediated by the asymmetry in derivatives of the CPRs but not in critical currents as was previously thought. We provided considerations for an accurate CPR measurement that encourage future experiments with reference CPRs different from those that were used before.
References in corpus (4)
Cited by in corpus (12)
- Large Second-Order Josephson Effect in Planar Superconductor-Semiconductor Junctions
- Direct measurement of a current phase relation in a graphene superconducting quantum interference device
- The hybrid Josephson rhombus: A superconducting element with tailored current-phase relation
- Superconducting Quantum Interference Devices based on InSb nanoflag Josephson junctions
- Thouless energy in Josephson SN-N-NS bridges
- SQUID oscillations in PbTe nanowire networks
- Diode effect in Shapiro steps in an asymmetric SQUID with a superconducting nanobridge
- Current Conservation in the Self-Consistent Josephson Junction
- Supercurrent reversal in Zeeman-split Josephson junctions
- Gate- and flux-tunable sin(2) Josephson element with proximitized Ge-based junctions
- Diamond-shaped evolution of the superconducting interference pattern in NbTiN weak-link Josephson junctions
- Probing the topological protection of edge states in multilayer tungsten ditelluride with the superconducting proximity effect