Quantum Hall-based superconducting interference device.

dc.contributor.author

Seredinski, Andrew

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Draelos, Anne W

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Arnault, Ethan G

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Wei, Ming-Tso

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Li, Hengming

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Fleming, Tate

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Watanabe, Kenji

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Taniguchi, Takashi

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Amet, François

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Finkelstein, Gleb

dc.date.accessioned

2019-12-22T00:27:29Z

dc.date.available

2019-12-22T00:27:29Z

dc.date.issued

2019-09-13

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2019-12-22T00:27:27Z

dc.description.abstract

We present a study of a graphene-based Josephson junction with dedicated side gates carved from the same sheet of graphene as the junction itself. These side gates are highly efficient and allow us to modulate carrier density along either edge of the junction in a wide range. In particular, in magnetic fields in the 1- to 2-T range, we are able to populate the next Landau level, resulting in Hall plateaus with conductance that differs from the bulk filling factor. When counter-propagating quantum Hall edge states are introduced along either edge, we observe a supercurrent localized along that edge of the junction. Here, we study these supercurrents as a function of magnetic field and carrier density.

dc.identifier

aaw8693

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2375-2548

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2375-2548

dc.identifier.uri

https://hdl.handle.net/10161/19611

dc.language

eng

dc.publisher

American Association for the Advancement of Science (AAAS)

dc.relation.ispartof

Science Advances

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10.1126/sciadv.aaw8693

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Science & Technology

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Multidisciplinary Sciences

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Science & Technology - Other Topics

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JOSEPHSON-JUNCTIONS

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GRAPHENE

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SUPERCURRENT

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Quantum Hall-based superconducting interference device.

dc.type

Journal article

duke.contributor.orcid

Draelos, Anne W|0000-0002-9046-3193

duke.contributor.orcid

Finkelstein, Gleb|0000-0002-0883-0741

pubs.begin-page

eaaw8693

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9

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Staff

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Duke

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Physics

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Trinity College of Arts & Sciences

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Duke Institute for Brain Sciences

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University Institutes and Centers

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Institutes and Provost's Academic Units

pubs.publication-status

Published

pubs.volume

5

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