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  3. Steering Large Magnetic Exchange Coupling in Nanographenes near the Closed-Shell to Open-Shell Transition.
 

Steering Large Magnetic Exchange Coupling in Nanographenes near the Closed-Shell to Open-Shell Transition.

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BORIS DOI
10.48350/178049
Publisher DOI
10.1021/jacs.2c11431
PubMed ID
36708335
Description
The design of open-shell carbon-based nanomaterials is at the vanguard of materials science, steered by their beneficial magnetic properties like weaker spin-orbit coupling than that of transition metal atoms and larger spin delocalization, which are of potential relevance for future spintronics and quantum technologies. A key parameter in magnetic materials is the magnetic exchange coupling (MEC) between unpaired spins, which should be large enough to allow device operation at practical temperatures. In this work, we theoretically and experimentally explore three distinct families of nanographenes (NGs) (A, B, and C) featuring majority zigzag peripheries. Through many-body calculations, we identify a transition from a closed-shell ground state to an open-shell ground state upon an increase of the molecular size. Our predictions indicate that the largest MEC for open-shell NGs occurs in proximity to the transition between closed-shell and open-shell states. Such predictions are corroborated by the on-surface syntheses and structural, electronic, and magnetic characterizations of three NGs (A[3,5], B[4,5], and C[4,3]), which are the smallest open-shell systems in their respective chemical families and are thus located the closest to the transition boundary. Notably, two of the NGs (B[4,5] and C[4,3]) feature record values of MEC (close to 200 meV) measured on the Au(111) surface. Our strategy for maximizing the MEC provides perspectives for designing carbon nanomaterials with robust magnetic ground states.
Date of Publication
2023-02-08
Publication Type
Article
Subject(s)
500 Science > 570 Life sciences; biology
500 Science > 540 Chemistry
Language(s)
en
Contributor(s)
Biswas, Kalyan
Soler, Diego
Mishra, Shantanu
Chen, Qiang
Yao, Xuelin
Sánchez-Grande, Ana
Eimre, Kristjan
Mutombo, Pingo
Martín-Fuentes, Cristina
Lauwaet, Koen
Gallego, José M
Ruffieux, Pascal
Pignedoli, Carlo A
Müllen, Klaus
Miranda, Rodolfo
Urgel, José I
Narita, Akimitsu
Fasel, Roman
Departement für Chemie, Biochemie und Pharmazie (DCBP) Universität Bern
Jelínek, Pavel
Écija, David
Additional Credits
Departement für Chemie, Biochemie und Pharmazie (DCBP) Universität Bern
Series
Journal of the American Chemical Society
Publisher
American Chemical Society
ISSN
0002-7863
Access(Rights)
restricted
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