Structure, assembly mechanism and magnetic properties of heterometallic dodecanuclear nanoclusters Dy III4M II8 (M = Ni, Co)†
Abstract
The formation of heterometallic clusters usually involves a much more complex self-assembly process than that of homometallic clusters. Thus the tracking of their assembly mechanism is challenging. To achieve this task, we designed one OH-containing Schiff base ligand of 1-[[(2-hydroxyethyl)imino]methyl]-2-naphthalenol (H2L) with coordination pockets facile for selective coordination with CoII/NiII and 4f metal ions. Its reactions with the corresponding metal ions gave two new isostructural dodecanuclear complexes [Dy4Co8(μ3-OH)8(L)8(OAc)4(H2O)4]·3EtOH·3CH3CN·H2O (1) and [Dy4Ni8(μ3-OH)8(L)8(OAc)4(H2O)4]·3.5EtOH·0.5CH3CN·5H2O (2), which feature a vertex-sharing tetracubane cyclic skeleton with the four DyIII ions wrapped by the eight 3d metal ions. High-resolution electrospray mass spectrometry (HRESI-MS) tests showed that the skeletons of clusters 1 and 2 have high stability even under gradually increasing energy of the ion source. Most notably, the intermediates formed in the reaction courses for clusters 1 and 2 were tracked using time-dependent HRESI-MS, which gave different proposed assembly mechanisms for 1 (H2L → DyL → DyCoL → Dy2CoL → Dy3CoL → Dy4CoL2 → Dy4Co2L3 → Dy4Co4L4 → Dy4Co8L8) and 2 (H2L → NiL → Dy2NiL2 → Dy3NiL2 → Dy4NiL2 → Dy4Ni2L3 → Dy4Ni4L3 → Dy4Ni6L4 → Dy4Ni8L8), respectively. This is the first time that different assembly mechanisms for isostructural heterometallic complexes are shown. Detailed magnetic studies revealed the absence of slow magnetic relaxation for 1 and the presence of slow magnetic relaxation for 2 with an energy barrier of 7.66 K and a pre-exponential factor of 1.45 × 10−6 s. The different magnetic performances of the two title complexes might be caused by the different metal ions of Co(II) and Ni(II).