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Addressing Electron Spins Embedded in Metallic Graphene Nanoribbons

[Image: see text] Spin-hosting graphene nanostructures are promising metal-free systems for elementary quantum spintronic devices. Conventionally, spins are protected from quenching by electronic band gaps, which also hinder electronic access to their quantum state. Here, we present a narrow graphen...

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Autores principales: Friedrich, Niklas, Menchón, Rodrigo E., Pozo, Iago, Hieulle, Jeremy, Vegliante, Alessio, Li, Jingcheng, Sánchez-Portal, Daniel, Peña, Diego, Garcia-Lekue, Aran, Pascual, José Ignacio
Formato: Online Artículo Texto
Lenguaje:English
Publicado: American Chemical Society 2022
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9527809/
https://www.ncbi.nlm.nih.gov/pubmed/36037149
http://dx.doi.org/10.1021/acsnano.2c05673
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author Friedrich, Niklas
Menchón, Rodrigo E.
Pozo, Iago
Hieulle, Jeremy
Vegliante, Alessio
Li, Jingcheng
Sánchez-Portal, Daniel
Peña, Diego
Garcia-Lekue, Aran
Pascual, José Ignacio
author_facet Friedrich, Niklas
Menchón, Rodrigo E.
Pozo, Iago
Hieulle, Jeremy
Vegliante, Alessio
Li, Jingcheng
Sánchez-Portal, Daniel
Peña, Diego
Garcia-Lekue, Aran
Pascual, José Ignacio
author_sort Friedrich, Niklas
collection PubMed
description [Image: see text] Spin-hosting graphene nanostructures are promising metal-free systems for elementary quantum spintronic devices. Conventionally, spins are protected from quenching by electronic band gaps, which also hinder electronic access to their quantum state. Here, we present a narrow graphene nanoribbon substitutionally doped with boron heteroatoms that combines a metallic character with the presence of localized spin 1/2 states in its interior. The ribbon was fabricated by on-surface synthesis on a Au(111) substrate. Transport measurements through ribbons suspended between the tip and the sample of a scanning tunneling microscope revealed their ballistic behavior, characteristic of metallic nanowires. Conductance spectra show fingerprints of localized spin states in the form of Kondo resonances and inelastic tunneling excitations. Density functional theory rationalizes the metallic character of the graphene nanoribbon due to the partial depopulation of the valence band induced by the boron atoms. The transferred charge builds localized magnetic moments around the boron atoms. The orthogonal symmetry of the spin-hosting state’s and the valence band’s wave functions protects them from mixing, maintaining the spin states localized. The combination of ballistic transport and spin localization into a single graphene nanoribbon offers the perspective of electronically addressing and controlling carbon spins in real device architectures.
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spelling pubmed-95278092022-10-04 Addressing Electron Spins Embedded in Metallic Graphene Nanoribbons Friedrich, Niklas Menchón, Rodrigo E. Pozo, Iago Hieulle, Jeremy Vegliante, Alessio Li, Jingcheng Sánchez-Portal, Daniel Peña, Diego Garcia-Lekue, Aran Pascual, José Ignacio ACS Nano [Image: see text] Spin-hosting graphene nanostructures are promising metal-free systems for elementary quantum spintronic devices. Conventionally, spins are protected from quenching by electronic band gaps, which also hinder electronic access to their quantum state. Here, we present a narrow graphene nanoribbon substitutionally doped with boron heteroatoms that combines a metallic character with the presence of localized spin 1/2 states in its interior. The ribbon was fabricated by on-surface synthesis on a Au(111) substrate. Transport measurements through ribbons suspended between the tip and the sample of a scanning tunneling microscope revealed their ballistic behavior, characteristic of metallic nanowires. Conductance spectra show fingerprints of localized spin states in the form of Kondo resonances and inelastic tunneling excitations. Density functional theory rationalizes the metallic character of the graphene nanoribbon due to the partial depopulation of the valence band induced by the boron atoms. The transferred charge builds localized magnetic moments around the boron atoms. The orthogonal symmetry of the spin-hosting state’s and the valence band’s wave functions protects them from mixing, maintaining the spin states localized. The combination of ballistic transport and spin localization into a single graphene nanoribbon offers the perspective of electronically addressing and controlling carbon spins in real device architectures. American Chemical Society 2022-08-29 2022-09-27 /pmc/articles/PMC9527809/ /pubmed/36037149 http://dx.doi.org/10.1021/acsnano.2c05673 Text en © 2022 The Authors. Published by American Chemical Society https://creativecommons.org/licenses/by/4.0/Permits the broadest form of re-use including for commercial purposes, provided that author attribution and integrity are maintained (https://creativecommons.org/licenses/by/4.0/).
spellingShingle Friedrich, Niklas
Menchón, Rodrigo E.
Pozo, Iago
Hieulle, Jeremy
Vegliante, Alessio
Li, Jingcheng
Sánchez-Portal, Daniel
Peña, Diego
Garcia-Lekue, Aran
Pascual, José Ignacio
Addressing Electron Spins Embedded in Metallic Graphene Nanoribbons
title Addressing Electron Spins Embedded in Metallic Graphene Nanoribbons
title_full Addressing Electron Spins Embedded in Metallic Graphene Nanoribbons
title_fullStr Addressing Electron Spins Embedded in Metallic Graphene Nanoribbons
title_full_unstemmed Addressing Electron Spins Embedded in Metallic Graphene Nanoribbons
title_short Addressing Electron Spins Embedded in Metallic Graphene Nanoribbons
title_sort addressing electron spins embedded in metallic graphene nanoribbons
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9527809/
https://www.ncbi.nlm.nih.gov/pubmed/36037149
http://dx.doi.org/10.1021/acsnano.2c05673
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