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arXiv · 2512.10869

Topological Engineering of a Frustrated Antiferromagnetic Triradical in Aza-Triangulene Architectures

Abstract

Open-shell nanographenes provide a versatile platform to host unconventional magnetic states within their {\pi}-conjugated networks. Particularly appealing are graphene architectures that incorporate spatially separated radicals and tunable interactions, offering a scalable route toward spin-based quantum architectures. Triangulenes are ideal for this purpose, as their radical count scales with size, although strong hybridization prevents individual spin control. Here, we realize a radical reconfiguration strategy that transforms a single-radical aza-triangulene into three topologically protected spin states by covalently extending it with armchair anthene moieties of increasing length. Scanning tunnelling spectroscopy reveals emergent correlated spins forming a frustrated spin trimer whose interaction weakens with anthene length. This trend is captured by multi-reference electronic-structure calculations, which trace a progressive rise in polyradical character driven by the progressive reorganization of the correlated frontier orbitals into three edge-localized natural orbitals. Consequently, the initial single-radical doublet reorganizes into non-interacting edge spins, a molecular analog of a three-qubit quantum register.

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Francisco Romero-Lara, Manuel Vilas-Varela, Manish Kumar, Ricardo Ortiz, Alessio Vegliante, Lucía Gómez-Rodrigo, Trisha Sai, Jan Patrick Calupitan, Diego Soler, Nikas Friedrich, Dongfei Wang, Jon Ortuzar, Leonard Edens, Stefano Trivini, Thomas Frederiksen, Fabian Schulz, Pavel Jelínek, Diego Peña, Jose Ignacio Pascual. 2025-12-11. Topological Engineering of a Frustrated Antiferromagnetic Triradical in Aza-Triangulene Architectures. https://arxiv.org/abs/2512.10869

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