Inducing Open-Shell Character in Porphyrins through Surface-Assisted Phenalenyl π‑Extension

Organic open-shell compounds are extraordinarily attractive materials for their use in molecular spintronics thanks to their long spin-relaxation times and structural flexibility. Porphyrins (Pors) have widely been used as molecular platforms to craft persistent open-shell structures through solutio...

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Veröffentlicht in:Journal of the American Chemical Society 2020-10, Vol.142 (42), p.18109-18117
Hauptverfasser: Sun, Qiang, Mateo, Luis M, Robles, Roberto, Ruffieux, Pascal, Lorente, Nicolas, Bottari, Giovanni, Torres, Tomás, Fasel, Roman
Format: Artikel
Sprache:eng
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Zusammenfassung:Organic open-shell compounds are extraordinarily attractive materials for their use in molecular spintronics thanks to their long spin-relaxation times and structural flexibility. Porphyrins (Pors) have widely been used as molecular platforms to craft persistent open-shell structures through solution-based redox chemistry. However, very few examples of inherently open-shell Pors have been reported, which are typically obtained through the fusion of non-Kekulé polyaromatic hydrocarbon moieties to the Por core. The inherent instability and low solubility of these radical species, however, requires the use of bulky substituents and multistep synthetic approaches. On-surface synthesis has emerged as a powerful tool to overcome such limitations, giving access to structures that cannot be obtained through classical methods. Herein, we present a simple and straightforward method for the on-surface synthesis of phenalenyl-fused Pors using readily available molecular precursors. In a systematic study, we examine the structural and electronic properties of three surface-supported Pors, bearing zero, two (PorA 2 ), and four (PorA 4 ) meso-fused phenalenyl moieties. Through atomically resolved real-space imaging by scanning probe microscopy and high-resolution scanning tunneling spectroscopy combined with density functional theory calculations, we unambiguously demonstrate a triplet ground state for PorA 2 and a charge-transfer-induced open-shell character for the intrinsically closed-shell PorA 4 .
ISSN:0002-7863
1520-5126
DOI:10.1021/jacs.0c07781