Publication
Title
Electronically tunable quantum phase slips in voltage-biased superconducting rings as a base for phase-slip flux qubits
Author
Abstract
Quantum phase slips represent a coherent mechanism to couple flux states of a superconducting loop. Since their first direct observation, there have been substantial developments in building charge-insensitive quantum phase-slip circuits. At the heart of these devices is a weak link, often a nanowire, interrupting a superconducting loop. Owing to the very small cross-sectional area of such a nanowire, quantum phase slip rates in the gigahertz range can be achieved. Instead, here we present the use of a bias voltage across a superconducting loop to electrostatically induce a weak link, thereby amplifying the rate of quantum phase slips without physically interrupting the loop. Our simulations reveal that the bias voltage modulates the free energy barrier between subsequent flux states in a very controllable fashion, providing a route towards a phase-slip flux qubit with a broadly tunable transition frequency.
Language
English
Source (journal)
Superconductor science and technology. - Bristol
Publication
Bristol : 2020
ISSN
0953-2048
DOI
10.1088/1361-6668/ABB8EB
Volume/pages
33 :12 (2020) , 9 p.
Article Reference
125002
ISI
000577207000001
Medium
E-only publicatie
Full text (Publisher's DOI)
Full text (open access)
Full text (publisher's version - intranet only)
UAntwerpen
Faculty/Department
Research group
Project info
Superconductivity per atomic layer.
Publication type
Subject
Affiliation
Publications with a UAntwerp address
External links
Web of Science
Record
Identifier
Creation 30.10.2020
Last edited 12.12.2024
To cite this reference