4.7 Article

Double butterfly-shaped octanuclear dysprosium clusters: structure, magnetism and assembly mechanism

Journal

CRYSTENGCOMM
Volume 25, Issue 2, Pages 225-232

Publisher

ROYAL SOC CHEMISTRY
DOI: 10.1039/d2ce01506d

Keywords

-

Ask authors/readers for more resources

This study synthesized two Dy-8 clusters with opposite framework structures and revealed their excellent molecular magnetic properties. The self-assembly process of the clusters was successfully tracked using HRESI-MS, and a possible self-assembly mechanism was proposed.
Lanthanide clusters with pleasing structures and excellent molecular magnetic properties have attracted extensive attention, but there are still very few examples to explore and dissect their self-assembly process, which limits the precise synthesis of lanthanide clusters with specific structures and functions. Herein, two examples of Dy-8 clusters (1 and 2) formed by the superposition of butterfly-shaped Dy-4 bilayers with opposite directions were obtained using salicylic acylhydrazone ligands (2-hydroxybenzoic hydrazide and 4-dimethyl/diethylaminosalicylaldehyde) and Dy(NO3)(3)center dot 6H(2)O in the presence of CH3OH : CH3CN as a mixed solvent. Structural analysis shows that the butterfly shaped Dy4L2 is an independent unit of Dy-8, which is composed of two ligands located in the butterfly wings and the cluster nucleus Dy4O6. Magnetic studies show that clusters 1 and 2 exhibit single-molecule magnet (SMM) behavior under zero-field conditions. The effective energy barriers (U-eff) and relaxation times (tau) obtained by fitting clusters 1 and 2 by the Arrhenius formula are U-eff = 1.91 (0.11) and 5.8 (1.04) K, and tau = 1.77 x 10(-2) and 1.88 x 10(-5) s, respectively. Notably, the octanuclear dysprosium clusters can exist stably under the conditions of high-resolution electrospray ionization mass spectrometry (HRESI-MS), providing an opportunity to track their self-assembly process. The formation of the above mentioned Dy-8 clusters was further followed using time-dependent HRESI-MS, and fragments of six reaction intermediates were identified. Combined with the change trend of the reaction intermediate fragments, we speculate that the possible self-assembly mechanism is as follows: L-2 + Dy -> Dy(L-2) -> Dy-2(L-2) -> Dy-3(L-2) -> Dy-3(L-2)(2) -> 2Dy(4)(L-2)(2) -> Dy-8(L-2)(4) or L-2 + Dy -> Dy(L-2) -> Dy-2(L-2) -> Dy-3(L-2) -> 2Dy(4)(L-2)(2) -> Dy-8(L-2)(4) or L-2 + Dy -> Dy(L-2) -> Dy-2(L-2) -> Dy-2(L-2)(2) -> Dy-3(L-2)(2) -> 2Dy(4)(L-2)(2) -> Dy-8(L-2)(4).

Authors

I am an author on this paper
Click your name to claim this paper and add it to your profile.

Reviews

Primary Rating

4.7
Not enough ratings

Secondary Ratings

Novelty
-
Significance
-
Scientific rigor
-
Rate this paper

Recommended

No Data Available
No Data Available