On-Surface Synthesis of a Ferromagnetic Molecular Spin Trimer
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American Chemical Society
Abstract
Triangulenes are prototypical examples of openshell nanographenes. Their magnetic properties, arising from the presence of unpaired π electrons, can be extensively tuned by modifying their size and shape or by introducing heteroatoms.
Different triangulene derivatives have been designed and synthesized in recent years thanks to the development of onsurface synthesis strategies. Triangulene-based nanostructures with polyradical character, hosting several interacting spin units, can be challenging to fabricate but are particularly interesting for potential applications in carbon-based spintronics. Here, we combine pristine and N-doped triangulenes into a more complex nanographene, TTAT, predicted to possess three unpaired π electrons delocalized along the zigzag periphery. We generate the molecule on a Au(111) surface and detect direct fingerprints of multiradical coupling and high-spin state using scanning tunneling microscopy and spectroscopy. With the support of theoretical calculations, we show that its three radical units are localized at distinct parts of the molecule and couple via symmetric ferromagnetic interactions, which result in a S = 3/2 ground state, thus demonstrating the realization of a molecular ferromagnetic Heisenberg spin trimer.
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Alessio Vegliante, Manuel Vilas-Varela, Ricardo Ortiz, Francisco Romero Lara, Manish Kumar, Lucía Gómez-Rodrigo, Stefano Trivini, Fabian Schulz, Diego Soler-Polo, Hassan Ahmoum, Emilio Artacho, Thomas Frederiksen, Pavel Jelínek, Jose Ignacio Pascual, and Diego Peña (2025). On-Surface Synthesis of a Ferromagnetic Molecular Spin Trimer. Journal of the American Chemical Society, 147 (23), 19530-19538 DOI: 10.1021/jacs.4c15736
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https://doi.org/10.1021/jacs.4c15736Sponsors
The authors acknowledge financial support from grants PID2022-140845OBC61, PID2022-140845OBC62, PID2022-139776NB-C65, PID2023-146694NB-I00, and CEX2020-001038-M funded by MICIU/AEI/10.13039/501100011033 and the European Regional Development Fund (ERDF, A way of making Europe), from the FET-Open project SPRING (863098), the HE project HORIZON-EUROHPC-JU-2021-COE-01-01-101093374-MaX, the ERC Synergy Grant MolDAM (no. 951519), and the ERC-AdG CONSPIRA (101097693) funded by the European Union, from projects 2022-QUAN-000030-01 and 2023-QUAN-000028-01 funded by the Diputacion Foral de Gipuzkoa, from the European Union NextGenerationEU/PRTR-C17.I1 as well as by the IKUR Strategy of the Department of Education of the Basque Government, and from the Xunta de Galicia (Centro singular de investigación de Galicia accreditation 2019-2022, ED431G 2019/03 and Oportunius Program). A.V. and F.R.L. acknowledge enrollment in the doctorate program “Physics of Nanostructures and Advanced Materials” from the advanced polymers and materials, physics, chemistry and technology” department of the Universidad del País Vasco (UPV/EHU). F.R.L. acknowledges funding by the Spanish Ministerio de Educación y Formación Profesional through the PhD scholarship no. FPU20/03305. F.S. acknowledges funding by the Spanish Ministerio de Ciencia, Innovación y Universidades through the Ramón y Cajal Fellowship RYC2021-034304-I. P.J., M.K., and D.S. acknowledge the support of the Czech Science Foundation (GACR) project no. 23-05486S and the CzechNanoLab Research Infrastructure supported by MEYS CR (LM2018110). E.A. acknowledges EPSRC grant EP/V062654/1 from the Theoretical Condensed Matter Cambridge─Critical Mass Grant United Kingdom and computational resources provided by the Donostia International Physics Center (DIPC) Computer Center.
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© 2025 The Authors. Published by American Chemical Society. This article is licensed under CC-BY 4.0
Attribution 4.0 International
Attribution 4.0 International








