Supramolecular charge transfer adducts of rare earth 3,5-dinitrobenzoates and diaminodurene: a new approach to increasing spin density in lanthanide complexes†

IF 3.2 3区 工程技术 Q2 CHEMISTRY, PHYSICAL Molecular Systems Design & Engineering Pub Date : 2024-11-15 DOI:10.1039/D4ME00124A
Pavel S. Koroteev, Andrey B. Ilyukhin, Vadim V. Minin, Zhanna V. Dobrokhotova, Natalia N. Breslavskaya, Elena N. Timokhina, Elena A. Ugolkova, Amgalanbaatar Baldansuren, Floriana Tuna and Nikolay N. Efimov
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Abstract

Seven isostructural supramolecular adducts, [Ln2(O2CC6H3(NO2)2)6(DMSO)4]·4(1,4-(H2N)2C6Me4) (Ln = Sm (1), Gd (2), Tb (3), Dy (4), Ho (5), Er (6), Y (7)), were synthesized by reacting LnCl3·6H2O with potassium 3,5-dinitrobenzoate in acetonitrile in the presence of 2,3,5,6-tetramethyl-1,4-phenylenediamine (DAD) and DMSO, and characterized by X-ray diffraction analysis. The charge transfer (CT) between DAD molecules and binuclear 3,5-dinitrobenzoate fragments gives rise to stacking interactions, which determine the supramolecular structures of complexes 1–7. Optical spectroscopy of complexes 1–7 corroborates the occurrence of significant CT, whereas magnetic studies substantiate the presence of a paramagnetic ion-radical structure which contributes to the magnetic moment of all the complexes and determines the paramagnetism of the yttrium compound 7. In the case of the latter complex, the value of the paramagnetic contribution resulting from CT was determined directly by magnetic measurement. It was demonstrated that this contribution decreases with the lowering of temperature, reflecting the depopulation of the triplet state of the CT complex, the ion-radical pair. A comprehensive EPR study of complex 7 was carried out by means of both continuous-wave (CW) and pulsed EPR spectroscopy in X- and Q-bands. The magnetic properties of complexes 2–6 indicate the prevalence of weak antiferromagnetic interactions within the binuclear fragments. The Dy complex exhibits field-induced single-molecule magnet (SMM) behaviour. The CT in the complex structures was modelled using DFT calculations.

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稀土3,5-二硝基苯甲酸酯和二氨基杜二烯的超分子电荷转移加合物:提高镧系配合物自旋密度的新途径
在2,3,5,6-四甲基-1,4-苯二胺(DAD)和DMSO存在的条件下,LnCl3·6H2O与3,5-二硝基苯甲酸钾在乙腈中反应,合成了7个同结构超分子加合物[Ln2(O2CC6H3(NO2)2)6(DMSO)4]·4(1,4-(H2N)2C6Me4) (Ln = Sm (1), Gd (2), Tb (3), Dy (4), Ho (5), Er (6), Y(7)),并用x射线衍射分析对其进行了表征。DAD分子与双核3,5-二硝基苯甲酸酯片段之间的电荷转移(CT)产生了堆叠相互作用,这决定了配合物1-7的超分子结构。配合物1-7的光谱学证实了明显的CT的存在,而磁性研究证实了顺磁性离子自由基结构的存在,该结构有助于所有配合物的磁矩,并决定了钇化合物7的顺磁性。在后一种配合物的情况下,由CT产生的顺磁贡献值直接由磁测量确定。结果表明,这一贡献随着温度的降低而降低,反映了CT配合物(离子-自由基对)的三重态的减少。利用连续波(CW)和脉冲EPR光谱在X和q波段对配合物7进行了全面的EPR研究。配合物2-6的磁性能表明在双核碎片中普遍存在弱反铁磁相互作用。Dy配合物表现出场致单分子磁铁(SMM)行为。利用DFT计算对复杂结构中的CT进行建模。
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来源期刊
Molecular Systems Design & Engineering
Molecular Systems Design & Engineering Engineering-Biomedical Engineering
CiteScore
6.40
自引率
2.80%
发文量
144
期刊介绍: Molecular Systems Design & Engineering provides a hub for cutting-edge research into how understanding of molecular properties, behaviour and interactions can be used to design and assemble better materials, systems, and processes to achieve specific functions. These may have applications of technological significance and help address global challenges.
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