In the present work, an experimental investigation of the main characteristics of a niobium nano Superconducting QUantum Interference Device (nanoSQUID) as a function of the temperature (9-0.3 K) is presented. The nanosensor consists of a niobium superconducting loop (0.4 x 1.0 mm2) interrupted by two sandwich nanojunctions (Nb/Al-AlOx/Nb) having an area of about (300x300) nm2. These nanodevices have been fabricated by means of a Focused Ion Beam (FIB) sculpting method, used as lithographic technique to define the various elements of the SQUID. We have performed measurements of current-voltage, critical current-magnetic flux characteristics and switching current distributions from the zero voltage state for different temperatures. The high critical current modulation depths and the low intrinsic dissipation exhibited by these devices ensure a suitable sensitivity for nanoscale applications in the whole temperature range investigated.

Niobium nanoSQUIDs Based on Sandwich nanojunctions: Performance as a Function of the Temperature

Granata C;Vettoliere A;Stornaiuolo D;Ruggiero B;Tafuri F;
2016

Abstract

In the present work, an experimental investigation of the main characteristics of a niobium nano Superconducting QUantum Interference Device (nanoSQUID) as a function of the temperature (9-0.3 K) is presented. The nanosensor consists of a niobium superconducting loop (0.4 x 1.0 mm2) interrupted by two sandwich nanojunctions (Nb/Al-AlOx/Nb) having an area of about (300x300) nm2. These nanodevices have been fabricated by means of a Focused Ion Beam (FIB) sculpting method, used as lithographic technique to define the various elements of the SQUID. We have performed measurements of current-voltage, critical current-magnetic flux characteristics and switching current distributions from the zero voltage state for different temperatures. The high critical current modulation depths and the low intrinsic dissipation exhibited by these devices ensure a suitable sensitivity for nanoscale applications in the whole temperature range investigated.
2016
Istituto di Scienze Applicate e Sistemi Intelligenti "Eduardo Caianiello" - ISASI
Istituto Superconduttori, materiali innovativi e dispositivi - SPIN
Critical current density (superconductivity)
Magnetic flux
Nanoscale devices
SQUIDs
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Utilizza questo identificativo per citare o creare un link a questo documento: https://hdl.handle.net/20.500.14243/340844
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