Experimental and theoretical investigations of four 3d–4f butterfly single-molecule magnets†
Abstract
The syntheses, structures, and characterization of four 3d–4f butterfly clusters are described. With different polyhydroxy Schiff-base ligands 2-(((2-hydroxy-3-methoxyphenyl)methylene)amino)-2-(hydroxymethyl)-1,3-propanediol (H4L1) and 2-(2,3-dihydroxpropyliminomethyl)-6-methoxyphenol (H3L2), three heterotetranuclear NiII2LnIII2 complexes (NiII2DyIII2-L1 (1), NiII2TbIII2-L2 (2), NiII2DyIII2-L2 (3)) and one heterohexanuclear CoIII2DyIII4 complex (4) were obtained. The three heterotetranuclear NiII2LnIII2 complexes display a central planar butterfly topology. The heterohexanuclear complex was built from butterfly CoIII2DyIII2 clusters and two DyIII ions by the bridging of pivalate. The vertices of the body positions of the butterfly are occupied by transition metal ions in all four complexes. Magnetic analyses indicate that the complexes exhibit typical single-molecule magnet behaviour with anisotropy barriers of 33.7 cm−1, 60.3 cm−1, 39.6 cm−1, and 18.4 cm−1 for 1–4, respectively. Ab initio calculations were performed on these complexes, and the low lying electronic structure of each LnIII (Ln = Dy, Tb) ion and the magnetic interactions were determined. It was found that the two Ln ions may have much more contribution to the total relaxation barrier through the stronger 3d–4f exchange couplings compared to weak Ln–Ln interactions.