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Symmetric and asymmetric ligands for Fe spin crossover - the influence of the axis.

作者信息

Kelly Conor T, Cuza Emmelyne, Pasquetti Eoin, Quinn Niall, Griffin Michael, Nockemann Peter, Müller-Bunz Helge, Bruno-Colmenarez Julia, Felton Solveig, Lada Zoi G, Morgan Grace G

机构信息

School of Chemistry, University College Dublin, Belfield, Dublin 4, Ireland.

School of Chemistry and Chemical Engineering, The QUILL Research Centre, Queen's University Belfast, David Keir Building, Stranmillis Rd, Belfast, BT9 5AG, UK.

出版信息

Dalton Trans. 2025 Sep 30;54(38):14522-14532. doi: 10.1039/d5dt01833a.

Abstract

Modulation of the local strain and geometry in Fe Schiff base complexes has been shown to allow the stabilisation of both the high spin (HS) and low spin (LS) states, along with thermal spin crossover (SCO). Complexes with hexadentate Schiff base ligands can be readily modified by changing the length of the tetraamine backbone linker. We report here 34 complexes of the symmetric [Fe(-sal232)] and asymmetric [Fe(-sal223)] families, where the former typically support the HS state, along with a handful of SCO examples, and the latter only supports the HS state. Magnetic measurements reveal that one symmetric example, [Fe(5-I-sal232)]ClO1.5, undergoes thermal SCO close to room temperature. We compare the structural distortion and spectroscopic properties in these examples, to indentify the factors that influence spin state choice. This reveals the importance of molecular symmetry, by way of a axis bisecting the complex which is present in the samples which stabilise the LS state so far. The aforementioned example and three others, one reported previously, have short metal-ligand bond lengths suggesting adoption of the LS state coupled with the presence of a axis. The additional strain in the [Fe(-sal223)] complexes due to the asymmetric nature of the backbone results in significantly greater distortion around the Fe centre which inhibits the stabilisation of the less distorted LS state. Computational analysis of the [Fe(5-I-sal232)] and [Fe(5-I-sal223)] isomers reveals that the HS state is more stable in the asymmetric [Fe(5-I-sal223)] species, whereas the energy difference between the HS and LS state for the [Fe(5-I-sal232)] cation is sufficiently small to allow for SCO to occur.

摘要

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