Damgaard-Møller Emil, Krause Lennard, Tolborg Kasper, Macetti Giovanni, Genoni Alessandro, Overgaard Jacob
Department of Chemistry, Aarhus University, Langelandsgade 140, 8000, Aarhus C, Denmark.
Université de Lorraine & CNRS, Laboratoire de Physique et Chimie Théoriques (LPCT), UMR CNRS 7019, 1 Boulevard Arago, F-57078, Metz, France.
Angew Chem Int Ed Engl. 2020 Nov 16;59(47):21203-21209. doi: 10.1002/anie.202007856. Epub 2020 Sep 16.
Reported here is an entirely new application of experimental electron density (EED) in the study of magnetic anisotropy of single-molecule magnets (SMMs). Among those SMMs based on one single transition metal, tetrahedral Co-complexes are prominent, and their large zero-field splitting arises exclusively from coupling between the d and d orbitals. Using very low temperature single-crystal synchrotron X-ray diffraction data, an accurate electron density (ED) was obtained for a prototypical SMM, and the experimental d-orbital populations were used to quantify the d-d coupling, which simultaneously provides the composition of the ground-state Kramers doublet wave function. Based on this experimentally determined wave function, an energy barrier for magnetic relaxation in the range 193-268 cm was calculated, and is in full accordance with the previously published value of 230 cm obtained from near-infrared spectroscopy. These results provide the first clear and direct link between ED and molecular magnetic properties.
本文报道了实验电子密度(EED)在单分子磁体(SMM)磁各向异性研究中的全新应用。在基于单一过渡金属的SMM中,四面体钴配合物很突出,其大的零场分裂完全源于d和d轨道之间的耦合。利用极低温下单晶同步辐射X射线衍射数据,获得了一个典型SMM的精确电子密度(ED),并使用实验d轨道占据数来量化d-d耦合,这同时给出了基态克莱默斯二重态波函数的组成。基于这个实验确定的波函数,计算出磁弛豫的能垒在193 - 268 cm范围内,与先前通过近红外光谱得到的230 cm的公布值完全一致。这些结果首次在ED和分子磁性质之间建立了清晰直接的联系。