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一种含有2,2'-偶氮吡啶自由基阴离子的稀土金属茂。

A rare earth metallocene containing a 2,2'-azopyridyl radical anion.

作者信息

Delano Iv Francis, Castellanos Ernesto, McCracken John, Demir Selvan

机构信息

Department of Chemistry, Michigan State University 578 South Shaw Lane East Lansing Michigan 48824 USA

出版信息

Chem Sci. 2021 Oct 20;12(46):15219-15228. doi: 10.1039/d1sc04285h. eCollection 2021 Dec 1.

Abstract

Introducing spin onto organic ligands that are coordinated to rare earth metal ions allows direct exchange with metal spin centres. This is particularly relevant for the deeply buried 4f-orbitals of the lanthanide ions that can give rise to unparalleled magnetic properties. For efficacy of exchange coupling, the donor atoms of the radical ligand require high-spin density. Such molecules are extremely rare owing to their reactive nature that renders isolation and purification difficult. Here, we demonstrate that a 2,2'-azopyridyl (abpy) radical ( = 1/2) bound to the rare earth metal yttrium can be realized. This molecule represents the first rare earth metal complex containing an abpy radical and is unambigously characterized by X-ray crystallography, NMR, UV-Vis-NIR, and IR spectroscopy. In addition, the most stable isotope Y with a natural abundance of 100% and a nuclear spin of ½ allows an in-depth analysis of the yttrium-radical complex EPR and HYSCORE spectroscopy. Further insight into the electronic ground state of the radical azobispyridine-coordinated metal complex was realized through unrestricted DFT calculations, which suggests that the unpaired spin density of the SOMO is heavily localized on the azo and pyridyl nitrogen atoms. The experimental results are supported by NBO calculations and give a comprehensive picture of the spin density of the azopyridyl ancillary ligand. This unexplored azopyridyl radical anion in heavy element chemistry bears crucial implications for the design of molecule-based magnets particularly comprising anisotropic lanthanide ions.

摘要

将自旋引入与稀土金属离子配位的有机配体上,可实现与金属自旋中心的直接交换。这对于镧系离子深埋的4f轨道尤为重要,因为这些轨道可产生无与伦比的磁性。为实现交换耦合的有效性,自由基配体的供体原子需要高自旋密度。由于其反应活性导致分离和纯化困难,这类分子极为罕见。在此,我们证明了与稀土金属钇结合的2,2'-偶氮吡啶基(abpy)自由基(自旋 = 1/2)是可以实现的。该分子代表了首个含有abpy自由基的稀土金属配合物,并通过X射线晶体学、核磁共振、紫外-可见-近红外和红外光谱进行了明确表征。此外,天然丰度为100%且核自旋为1/2的最稳定同位素钇,使得对钇-自由基配合物进行电子顺磁共振(EPR)和高分辨超精细结构相关谱(HYSCORE)光谱的深入分析成为可能。通过无限制密度泛函理论(DFT)计算,进一步深入了解了偶氮双吡啶配位的金属配合物的电子基态,结果表明单占据分子轨道(SOMO)的未成对自旋密度主要定域在偶氮基和吡啶基氮原子上。自然键轨道(NBO)计算支持了实验结果,并全面描绘了偶氮吡啶辅助配体的自旋密度。重元素化学中这种尚未探索的偶氮吡啶自由基阴离子,对特别是包含各向异性镧系离子的分子基磁体的设计具有至关重要的意义。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/4bfe/8634996/4c64dd736d4a/d1sc04285h-f1.jpg

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