1,570 research outputs found
Thermal conductance of a proximity superconductor
We study heat transport in hybrid normal metal - superconductor - normal
metal (NSN) structures. We find the thermal conductance of a short
superconducting wire to be strongly enhanced beyond the BCS value due to
inverse proximity effect. The measurements agree with a model based on the
quasiclassical theory of superconductivity in the diffusive limit. We determine
a crossover temperature below which quasiparticle heat conduction dominates
over the electron-phonon relaxation.Comment: 4+ pages, 3 figure
Origin of Hysteresis in a Proximity Josephson Junction
We investigate hysteresis in the transport properties of Superconductor -
Normal metal - Superconductor (S-N-S) junctions at low temperatures by
measuring directly the electron temperature in the normal metal. Our results
demonstrate unambiguously that the hysteresis results from an increase of the
normal metal electron temperature once the junction switches to the resistive
state. In our geometry, the electron temperature increase is governed by the
thermal resistance of the superconducting electrodes of the junction
Laterally proximized aluminum tunnel junctions
This letter presents experiments on junctions fabricated by a technique that enables the use of high-quality aluminum oxide tunnel barriers with normal metal electrodes at low temperatures. Inverse proximity effect is applied to diminish the superconductivity of an aluminum dot through a clean lateral connection to a normal metal electrode. To demonstrate the effectiveness of this method, fully normal-state single electron transistors (SETs) and normal metal-insulator-superconductor (NIS) junctions applying proximized Aljunctions were fabricated. The transport characteristics of the junctions were similar to those obtained from standard theoreticalmodels of regular SETs and NIS junctions.Peer reviewe
Low-temperature characterization of Nb-Cu-Nb weak links with Ar ion-cleaned interfaces
We characterize niobium-based lateral Superconductor (S) - Normal metal (N) -
Superconductor weak links through low-temperature switching current
measurements and tunnel spectroscopy. We fabricate the SNS devices in two
separate lithography and deposition steps, combined with strong argon ion
cleaning before the normal metal deposition in the last step. Our SNS weak link
consists of high-quality sputtered Nb electrodes that are contacted with
evaporated Cu. The two-step fabrication flow enables great flexibility in the
choice of materials and pattern design. A comparison of the
temperature-dependent equilibrium critical supercurrent with theoretical
predictions indicates that the quality of the Nb-Cu interface is similar to
that of evaporated Al-Cu weak links. Aiming at increased sensitivity, range of
operation temperatures, and thermal isolation, we investigate how these SNS
structures can be combined with shadow-evaporated aluminum tunnel junctions for
sensor applications that utilize the superconducting proximity effect. To this
end, we demonstrate a hybrid magnetic flux sensor based on a Nb-Cu-Nb SNS
junction, where the phase-dependent normal metal density of states is probed
with an Al tunnel junction.Comment: 5 pages, 3 figure
Magnetic-field-induced stabilization of nonequilibrium superconductivity in a normal-metal/insulator/superconductor junction
A small magnetic field is found to enhance relaxation processes in a superconductor, thus stabilizing superconductivity in nonequilibrium conditions. In a normal-metal (N)/insulator/superconductor (S) tunnel junction, applying a field of the order of 100μT leads to significantly improved cooling of the N island by quasiparticle (QP) tunneling. These findings are attributed to faster QP relaxation within the S electrodes as a result of enhanced QP drain through regions with a locally suppressed energy gap due to magnetic vortices in the S leads at some distance from the junction.Peer reviewe
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