Supercurrent Time Division Multiplexing with Solid-State Integrated Hybrid Superconducting Electronics

Fuente: arXiv
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Main Authors: Paghi, Alessandro, Borgongino, Laura, Tortorella, Simone, De Simoni, Giorgio, Strambini, Elia, Sorba, Lucia, Giazotto, Francesco
Format: Preprint
Published: 2024
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_version_ 1866909761652391936
author Paghi, Alessandro
Borgongino, Laura
Tortorella, Simone
De Simoni, Giorgio
Strambini, Elia
Sorba, Lucia
Giazotto, Francesco
author_facet Paghi, Alessandro
Borgongino, Laura
Tortorella, Simone
De Simoni, Giorgio
Strambini, Elia
Sorba, Lucia
Giazotto, Francesco
contents Time-division multiplexing of cryogenic signals is a promising approach to reduce space requirements, shorten cooldown times, and increase the number of quantum devices measured per cooldown. We demonstrate time-division multiplexing of non-dissipative supercurrents using voltage-controlled hybrid superconducting demultiplexers. These chips integrate superconducting Josephson Field Effect Transistors including Al superconducting electrodes, proximitized semiconducting InAs channels, and hafnium oxide gate insulators. Each transistor fully suppresses the switching current and increases the resistance 20 times under a gate voltage of -4.5 V. A demultiplexer with one input and eight outputs showed a non-dissipative input range of +-2 uA, operating up to 100 MHz in signal frequency and 100 kHz in switching frequency at 50 mK. It achieved near-zero insertion loss in the superconducting state and an ON/OFF ratio of 17.5 dB. By optimizing the signal layout, the operation was extended up to 4 GHz using a demultiplexer with two outputs.
format Preprint
id arxiv_https___arxiv_org_abs_2410_11721
institution arXiv
publishDate 2024
record_format arxiv
spellingShingle Supercurrent Time Division Multiplexing with Solid-State Integrated Hybrid Superconducting Electronics
Paghi, Alessandro
Borgongino, Laura
Tortorella, Simone
De Simoni, Giorgio
Strambini, Elia
Sorba, Lucia
Giazotto, Francesco
Superconductivity
Mesoscale and Nanoscale Physics
Materials Science
Quantum Physics
Time-division multiplexing of cryogenic signals is a promising approach to reduce space requirements, shorten cooldown times, and increase the number of quantum devices measured per cooldown. We demonstrate time-division multiplexing of non-dissipative supercurrents using voltage-controlled hybrid superconducting demultiplexers. These chips integrate superconducting Josephson Field Effect Transistors including Al superconducting electrodes, proximitized semiconducting InAs channels, and hafnium oxide gate insulators. Each transistor fully suppresses the switching current and increases the resistance 20 times under a gate voltage of -4.5 V. A demultiplexer with one input and eight outputs showed a non-dissipative input range of +-2 uA, operating up to 100 MHz in signal frequency and 100 kHz in switching frequency at 50 mK. It achieved near-zero insertion loss in the superconducting state and an ON/OFF ratio of 17.5 dB. By optimizing the signal layout, the operation was extended up to 4 GHz using a demultiplexer with two outputs.
title Supercurrent Time Division Multiplexing with Solid-State Integrated Hybrid Superconducting Electronics
topic Superconductivity
Mesoscale and Nanoscale Physics
Materials Science
Quantum Physics
url https://arxiv.org/abs/2410.11721