Superconducting computing promises enhanced computational power in both classical and quantum approaches. Yet, scalable and fast superconducting memories are not implemented. Here, we propose a fully superconducting memory cell based on the hysteretic phase-slip transition existing in long aluminum nanowire Josephson junctions. Embraced by a superconducting ring, the memory cell codifies the logic state in the direction of the circulating persistent current, as commonly defined in flux-based superconducting memories. But, unlike the latter, the hysteresis here is a consequence of the phase-slip occurring in the long weak link and associated to the topological transition of its superconducting gap. This disentangles our memory scheme from the large-inductance constraint, thus enabling its miniaturization. Moreover, the strong activation energy for phase-slip nucleation provides a robust topological protection against stochastic phase-slips and magnetic-flux noise. These properties make the Josephson phase-slip memory a promising solution for advanced superconducting classical logic architectures or flux qubits.

Preliminary demonstration of a persistent Josephson phase-slip memory cell with topological protection

Ligato N;Strambini E;Paolucci F;Giazotto F
2021

Abstract

Superconducting computing promises enhanced computational power in both classical and quantum approaches. Yet, scalable and fast superconducting memories are not implemented. Here, we propose a fully superconducting memory cell based on the hysteretic phase-slip transition existing in long aluminum nanowire Josephson junctions. Embraced by a superconducting ring, the memory cell codifies the logic state in the direction of the circulating persistent current, as commonly defined in flux-based superconducting memories. But, unlike the latter, the hysteresis here is a consequence of the phase-slip occurring in the long weak link and associated to the topological transition of its superconducting gap. This disentangles our memory scheme from the large-inductance constraint, thus enabling its miniaturization. Moreover, the strong activation energy for phase-slip nucleation provides a robust topological protection against stochastic phase-slips and magnetic-flux noise. These properties make the Josephson phase-slip memory a promising solution for advanced superconducting classical logic architectures or flux qubits.
2021
Istituto Nanoscienze - NANO
Inglese
12
1
5200-1
5200-8
https://www.nature.com/articles/s41467-021-25209-y
Sì, ma tipo non specificato
KINETIC INDUCTANCE
Internazionale
No
4
info:eu-repo/semantics/article
262
Ligato, N; Strambini, E; Paolucci, F; Giazotto, F
01 Contributo su Rivista::01.01 Articolo in rivista
open
   Coherent manipulation and control of heat in solid-state nanostructures: the era of coherent caloritronics
   COMANCHE
   European Commission
   SEVENTH FRAMEWORK PROGRAMME
   615187

   Thermoelectric detector based on superconductor-ferromagnet heterostructures
   SUPERTED
   European Commission
   Horizon 2020 Framework Programme
   800923

   INFN-RT2 172800
   INFN-RT2 172800
   Regione Toscana
   POR FSE 2014-2020
   INFN-RT2 172800

   breAkThrough innovaTion pRogrAmme for a pan-European Detection and Imaging eCosysTem
   ATTRACT
   European Commission
   Horizon 2020 Framework Programme
   777222
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Utilizza questo identificativo per citare o creare un link a questo documento: https://hdl.handle.net/20.500.14243/441947
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