Title
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Electronically tunable quantum phase slips in voltage-biased superconducting rings as a base for phase-slip flux qubits
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Author
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Abstract
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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. |
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Language
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English
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Source (journal)
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Superconductor science and technology. - Bristol
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Publication
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Bristol
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2020
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ISSN
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0953-2048
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DOI
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10.1088/1361-6668/ABB8EB
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Volume/pages
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33
:12
(2020)
, 9 p.
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Article Reference
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125002
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ISI
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000577207000001
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Medium
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E-only publicatie
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Full text (Publisher's DOI)
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Full text (open access)
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Full text (publisher's version - intranet only)
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