Spin Crossover in an Iron(II) Complex with a Radical Iminosemiquinonate Ligand

Abstract Metal complexes that exhibit spin crossover (SCO) or valence tautomerism (VT) are promising candidates for molecular materials. In an exploration of the interplay between SCO and VT in iron chemistry, we combined redox-active aminophenol derivatives (4,6-di-tert-butylphenol (H2LH) or 2-anilino-4,6-di-tert-butylphenol (H2LPh)) with iron to prepare: [FeII(HLPhAP)−(tpa)]BPh4 (1), [FeII(LPhISQ)•–(tpa)]BPh4 (2), [FeII(HLHAP)−(tpa)]BPh4 (3), and [FeIII(LHISQ)•–(tpa)](BPh4)2 (4) (tpa = tris(2-pyridylmethyl)amine). The aminophenol derivatives were found to adopt either closed-shell monoanionic aminophenolate (HLAP)− or open-shell monoanionic radical iminosemiquinonate (LISQ)•– forms. Multitechnique analysis indicates 1 and 3 exist in the HS-FeII–(HLAP)− state, while 4 adopts the LS-FeIII–(LISQ)•– form. The FeII–(LPhISQ)•– tautomer is evident for 2, rather than FeIII–(LPhAP)2–, and incomplete SCO occurs in the solid state, from a mixture of LS-FeII–(LISQ)•– and HS-FeII–(LISQ)•– at low temperature to fully HS-FeII–(LISQ)•– at room temperature. In solution, Evans NMR measurements on 2 are indicative of HS-FeII–(LISQ)•– at room temperature, with low-temperature, frozen-solution EPR spectroscopy suggesting the dominant presence of the LS-FeII–(LISQ)•– species, consistent with SCO in solution as well as in the solid state. This family of complexes demonstrates oxidation- and protonation-state versatility, with the aminophenol ligands modulating the iron oxidation state while adopting distinct redox or protonation forms. Together, these results confirm one of the few known FeII–radical SCO systems in an octahedral environment and demonstrate that redox-active aminophenol-based ligands can facilitate the development of new molecular switches.

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Publication Details

Journal
Inorganic Chemistry
Published
2026-09-04
DOI
https://doi.org/10.1021/acs.inorgchem.6c01094
Primary Topic
Magnetism in coordination complexes
Type
article
Field-Weighted Citation Impact
0.00

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article

Spin Crossover in an Iron(II) Complex with a Radical Iminosemiquinonate Ligand

Birgit Weber, Jett T. Janetzki, Lorenzo Sorace, Lars Goerigk et al.
Inorganic Chemistry
Magnetism in coordination complexes
article

Spin Crossover in an Iron(II) Complex with a Radical Iminosemiquinonate Ligand

Birgit Weber, Jett T. Janetzki, Lorenzo Sorace, Lars Goerigk, Colette Boskovic, Marcus J. Giansiracusa, Robert W. Gable, Jack K. Clegg, Florian Daumann, Ismath Haseena Ismail
article en

Abstract

Abstract Metal complexes that exhibit spin crossover (SCO) or valence tautomerism (VT) are promising candidates for molecular materials. In an exploration of the interplay between SCO and VT in iron chemistry, we combined redox-active aminophenol derivatives (4,6-di-tert-butylphenol (H2LH) or 2-anilino-4,6-di-tert-butylphenol (H2LPh)) with iron to prepare: [FeII(HLPhAP)−(tpa)]BPh4 (1), [FeII(LPhISQ)•–(tpa)]BPh4 (2), [FeII(HLHAP)−(tpa)]BPh4 (3), and [FeIII(LHISQ)•–(tpa)](BPh4)2 (4) (tpa = tris(2-pyridylmethyl)amine). The aminophenol derivatives were found to adopt either closed-shell monoanionic aminophenolate (HLAP)− or open-shell monoanionic radical iminosemiquinonate (LISQ)•– forms. Multitechnique analysis indicates 1 and 3 exist in the HS-FeII–(HLAP)− state, while 4 adopts the LS-FeIII–(LISQ)•– form. The FeII–(LPhISQ)•– tautomer is evident for 2, rather than FeIII–(LPhAP)2–, and incomplete SCO occurs in the solid state, from a mixture of LS-FeII–(LISQ)•– and HS-FeII–(LISQ)•– at low temperature to fully HS-FeII–(LISQ)•– at room temperature. In solution, Evans NMR measurements on 2 are indicative of HS-FeII–(LISQ)•– at room temperature, with low-temperature, frozen-solution EPR spectroscopy suggesting the dominant presence of the LS-FeII–(LISQ)•– species, consistent with SCO in solution as well as in the solid state. This family of complexes demonstrates oxidation- and protonation-state versatility, with the aminophenol ligands modulating the iron oxidation state while adopting distinct redox or protonation forms. Together, these results confirm one of the few known FeII–radical SCO systems in an octahedral environment and demonstrate that redox-active aminophenol-based ligands can facilitate the development of new molecular switches.

Inorganic Chemistry
The University of Queensland (AU), The University of Melbourne (AU), Schiller International University (FR), University of Florence (IT), Friedrich Schiller University Jena (DE)
Deutsche Forschungsgemeinschaft, University of Melbourne, Ministero dell’Istruzione, dell’Università e della Ricerca, Australian Research Council
Openalex Percentile: Top 28%
Magnetism in coordination complexes
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