| Download ( PDF | 375kB) | ||
| Published Version Download ( PDF | 3MB) | License: Creative Commons Attribution 4.0 |
Photooxidation driven formation of Fe-Au linked ferrocene-based single-molecule junctions
Lee, Woojung, Li, Liang, Camarasa-Gómez, María, Hernangómez-Pérez, Daniel, Roy, Xavier, Evers, Ferdinand
, Inkpen, Michael S.
and Venkataraman, Latha
(2024)
Photooxidation driven formation of Fe-Au linked ferrocene-based single-molecule junctions.
Nature Communications 15.
Date of publication of this fulltext: 27 Feb 2024 05:57
Article
DOI to cite this document: 10.5283/epub.55591
Abstract
Metal-metal contacts, though not yet widely realized, may provide exciting opportunities to serve as tunable and functional interfaces in single-molecule devices. One of the simplest components which might facilitate such binding interactions is the ferrocene group. Notably, direct bonds between the ferrocene iron center and metals such as Pd or Co have been demonstrated in molecular complexes ...
Metal-metal contacts, though not yet widely realized, may provide exciting opportunities to serve as tunable and functional interfaces in single-molecule devices. One of the simplest components which might facilitate such binding interactions is the ferrocene group. Notably, direct bonds between the ferrocene iron center and metals such as Pd or Co have been demonstrated in molecular complexes comprising coordinating ligands attached to the cyclopentadienyl rings. Here, we demonstrate that ferrocene-based single-molecule devices with Fe-Au interfacial contact geometries form at room temperature in the absence of supporting coordinating ligands. Applying a photoredox reaction, we propose that ferrocene only functions effectively as a contact group when oxidized, binding to gold through a formal Fe3+ center. This observation is further supported by a series of control measurements and density functional theory calculations. Our findings extend the scope of junction contact chemistries beyond those involving main group elements, lay the foundation for light switchable ferrocene-based single-molecule devices, and highlight new potential mechanistic function(s) of unsubstituted ferrocenium groups in synthetic processes.
Alternative links to fulltext
Involved Institutions
Details
| Item type | Article | ||||
| Journal or Publication Title | Nature Communications | ||||
| Publisher: | Nature Publishing Group | ||||
|---|---|---|---|---|---|
| Open Access Type: | CC-License | ||||
| Volume: | 15 | ||||
| Date | 16 February 2024 | ||||
| Institutions | Physics > Institute of Theroretical Physics > Chair Ferdinand Evers | ||||
| Identification Number |
| ||||
| Dewey Decimal Classification | 500 Science > 530 Physics | ||||
| Status | Published | ||||
| Refereed | Yes, this version has been refereed | ||||
| Created at the University of Regensburg | Partially | ||||
| URN of the UB Regensburg | urn:nbn:de:bvb:355-epub-555919 | ||||
| Item ID | 55591 |
Download Statistics
Download Statistics