Magnetically induced currents and aromaticity in ligand-stabilized Au and AuPt superatoms

Abstract
Understanding magnetically induced currents (MICs) in aromatic or metallic nanostructures is crucial for interpreting local magnetic shielding and NMR data. Direct measurements of the induced currents have been successful only in a few planar molecules but their indirect effects are seen in NMR shifts of probe nuclei. Here, we have implemented a numerically efficient method to calculate gauge-including MICs in the formalism of auxiliary density functional theory. We analyze the currents in two experimentally synthesized gold-based, hydrogen-containing ligand-stabilized nanoclusters [HAu9(PPh3)8]2+ and [PtHAu8(PPh3)8]+. Both clusters have a similar octet configuration of Au(6s)-derived delocalized “superatomic” electrons. Surprisingly, Pt-doping in gold increases the diatropic response of the superatomic electrons to an external magnetic field and enhances the aromaticity of [PtHAu8(PPh3)8]+. This is manifested by a stronger shielding of the hydrogen proton in the metal core of the cluster as compared to [HAu9(PPh3)8]2+, causing a significant upfield shift in agreement with experimental proton NMR data measured for these two clusters. Our method allows the determination of local magnetic shielding properties for any component in large 3D nanostructures, opening the door for detailed interpretation of complex NMR spectra.
Main Authors
Format
Articles Research article
Published
2021
Series
Subjects
Publication in research information system
Publisher
Nature Publishing Group
The permanent address of the publication
https://urn.fi/URN:NBN:fi:jyu-202105042596Use this for linking
Review status
Peer reviewed
ISSN
2041-1723
DOI
https://doi.org/10.1038/s41467-021-22715-x
Language
English
Published in
Nature Communications
Citation
  • López-Estrada, O., Zuniga-Gutierrez, B., Selenius, E., Malola, S., & Häkkinen, H. (2021). Magnetically induced currents and aromaticity in ligand-stabilized Au and AuPt superatoms. Nature Communications, 12, Article 2477. https://doi.org/10.1038/s41467-021-22715-x
License
CC BY 4.0Open Access
Funder(s)
Research Council of Finland
Research Council of Finland
Research Council of Finland
Funding program(s)
Research costs of Academy Professor, AoF
Research costs of Academy Professor, AoF
Academy Programme, AoF
Akatemiaprofessorin tutkimuskulut, SA
Akatemiaprofessorin tutkimuskulut, SA
Akatemiaohjelma, SA
Research Council of Finland
Additional information about funding
This work was supported by the Academy of Finland (grants 294217, 319208, 315549), and through H.H.’s Academy Professorship. E.S. acknowledges the The Finnish Cultural Foundation for a PhD study grant. The computations were made at the Nanoscience Center of the University of Jyväskylä by utilizing the FCCI - Finnish Computing Competence Infrastructure (persistent indentifier urn:nbn:fi:research-infras-2016072533). B.Z.G. acknowledges the funding from CONACyT project CB-2015-258647.
Copyright© 2021 the Authors

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