High-yield parallel fabrication of quantum-dot monolayer single-electron devices displaying Coulomb staircase, contacted by graphene

The integration of nano-molecules into microelectronic circuitry is challenging. Here, the authors provide a scalable method for contacting a self-assembled monolayer of nanoparticles with a single layer of graphene that produces single-electron effects, in the form of a Coulomb staircase, with a yi...

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Autores principales: Joel M. Fruhman, Hippolyte P.A.G. Astier, Bruno Ehrler, Marcus L. Böhm, Lissa F. L. Eyre, Piran R. Kidambi, Ugo Sassi, Domenico De Fazio, Jonathan P. Griffiths, Alexander J. Robson, Benjamin J. Robinson, Stephan Hofmann, Andrea C. Ferrari, Christopher J. B. Ford
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Lenguaje:EN
Publicado: Nature Portfolio 2021
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Acceso en línea:https://doaj.org/article/3b9ddba3ef2246cea4f1fee309ac5979
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spelling oai:doaj.org-article:3b9ddba3ef2246cea4f1fee309ac59792021-12-02T15:33:16ZHigh-yield parallel fabrication of quantum-dot monolayer single-electron devices displaying Coulomb staircase, contacted by graphene10.1038/s41467-021-24233-22041-1723https://doaj.org/article/3b9ddba3ef2246cea4f1fee309ac59792021-07-01T00:00:00Zhttps://doi.org/10.1038/s41467-021-24233-2https://doaj.org/toc/2041-1723The integration of nano-molecules into microelectronic circuitry is challenging. Here, the authors provide a scalable method for contacting a self-assembled monolayer of nanoparticles with a single layer of graphene that produces single-electron effects, in the form of a Coulomb staircase, with a yield of at least 70%.Joel M. FruhmanHippolyte P.A.G. AstierBruno EhrlerMarcus L. BöhmLissa F. L. EyrePiran R. KidambiUgo SassiDomenico De FazioJonathan P. GriffithsAlexander J. RobsonBenjamin J. RobinsonStephan HofmannAndrea C. FerrariChristopher J. B. FordNature PortfolioarticleScienceQENNature Communications, Vol 12, Iss 1, Pp 1-10 (2021)
institution DOAJ
collection DOAJ
language EN
topic Science
Q
spellingShingle Science
Q
Joel M. Fruhman
Hippolyte P.A.G. Astier
Bruno Ehrler
Marcus L. Böhm
Lissa F. L. Eyre
Piran R. Kidambi
Ugo Sassi
Domenico De Fazio
Jonathan P. Griffiths
Alexander J. Robson
Benjamin J. Robinson
Stephan Hofmann
Andrea C. Ferrari
Christopher J. B. Ford
High-yield parallel fabrication of quantum-dot monolayer single-electron devices displaying Coulomb staircase, contacted by graphene
description The integration of nano-molecules into microelectronic circuitry is challenging. Here, the authors provide a scalable method for contacting a self-assembled monolayer of nanoparticles with a single layer of graphene that produces single-electron effects, in the form of a Coulomb staircase, with a yield of at least 70%.
format article
author Joel M. Fruhman
Hippolyte P.A.G. Astier
Bruno Ehrler
Marcus L. Böhm
Lissa F. L. Eyre
Piran R. Kidambi
Ugo Sassi
Domenico De Fazio
Jonathan P. Griffiths
Alexander J. Robson
Benjamin J. Robinson
Stephan Hofmann
Andrea C. Ferrari
Christopher J. B. Ford
author_facet Joel M. Fruhman
Hippolyte P.A.G. Astier
Bruno Ehrler
Marcus L. Böhm
Lissa F. L. Eyre
Piran R. Kidambi
Ugo Sassi
Domenico De Fazio
Jonathan P. Griffiths
Alexander J. Robson
Benjamin J. Robinson
Stephan Hofmann
Andrea C. Ferrari
Christopher J. B. Ford
author_sort Joel M. Fruhman
title High-yield parallel fabrication of quantum-dot monolayer single-electron devices displaying Coulomb staircase, contacted by graphene
title_short High-yield parallel fabrication of quantum-dot monolayer single-electron devices displaying Coulomb staircase, contacted by graphene
title_full High-yield parallel fabrication of quantum-dot monolayer single-electron devices displaying Coulomb staircase, contacted by graphene
title_fullStr High-yield parallel fabrication of quantum-dot monolayer single-electron devices displaying Coulomb staircase, contacted by graphene
title_full_unstemmed High-yield parallel fabrication of quantum-dot monolayer single-electron devices displaying Coulomb staircase, contacted by graphene
title_sort high-yield parallel fabrication of quantum-dot monolayer single-electron devices displaying coulomb staircase, contacted by graphene
publisher Nature Portfolio
publishDate 2021
url https://doaj.org/article/3b9ddba3ef2246cea4f1fee309ac5979
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