Tailoring magnetism of graphene nanoflakes via tip-controlled dehydrogenation

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Zhao, Chenxiao;Huang, Qiang;Valenta, Leoš;Eimre, Kristjan;Yang, Lin;V. Yakutovich, Aliaksandr;Xu, Wangwei;Feng, Xinliang;Juríček, Michal;Fasel, Roman;Ruffieux, Pascal;Pignedoli, Carlo A.

Description

Atomically precise graphene nanoflakes called nanographenes have emerged as a promising platform to realize carbon magnetism. Their ground state spin configuration can be anticipated by Ovchinnikov-Lieb rules based on the mismatch of π electrons from two sublattices. While rational geometrical design achieves specific spin configurations, further direct control over the π electrons offers a desirable extension for efficient spin manipulations and potential quantum device operations. To this end, in a recent publication, we applied a site-specific dehydrogenation using a scanning tunneling microscope tip to nanographenes deposited on a Au(111) substrate, which showed the capability of precisely tailoring the underlying π-electron system and therefore efficiently manipulating their magnetism. Through first-principles calculations and tight-binding meanfield-Hubbard modeling, we demonstrated that the dehydrogenation-induced Au—C bond formation along with the resulting hybridization between frontier π orbitals and Au substrate states effectively eliminate the unpaired π electron. Our results establish an efficient technique for controlling the magnetism of nanographenes. This record contains data that support the scientific results discussed in our manuscript.

Citations (1)

Mentions (0)

Metrics

Dataset Index

0.7

FAIR Score

88%

Citations

1

Mentions

0

Metrics Over Time

Publication Details

DOI

Publisher

Materials Cloud

Assigned Domain

Subfield

Food Science

Field

Agricultural and Biological Sciences

Domain

Life Sciences

Confidence Score

79%

Source

Open Alex

Keywords

magnetic nanographeneCSCSMARVEL/P4SNSFDFTSTMon surface synthesis

Normalization Factors

FT

13.46

CTw

1.00

MTw

1.00