Chemical Sciences Division, Oak Ridge National Laboratory, Oak Ridge, TN, USA.
Radioisotope Science and Technology Division, Oak Ridge National Laboratory, Oak Ridge, TN, USA.
Nature. 2024 May;629(8013):819-823. doi: 10.1038/s41586-024-07267-6. Epub 2024 May 22.
Lanthanide rare-earth metals are ubiquitous in modern technologies, but we know little about chemistry of the 61st element, promethium (Pm), a lanthanide that is highly radioactive and inaccessible. Despite its importance, Pm has been conspicuously absent from the experimental studies of lanthanides, impeding our full comprehension of the so-called lanthanide contraction phenomenon: a fundamental aspect of the periodic table that is quoted in general chemistry textbooks. Here we demonstrate a stable chelation of the Pm radionuclide (half-life of 2.62 years) in aqueous solution by the newly synthesized organic diglycolamide ligand. The resulting homoleptic Pm complex is studied using synchrotron X-ray absorption spectroscopy and quantum chemical calculations to establish the coordination structure and a bond distance of promethium. These fundamental insights allow a complete structural investigation of a full set of isostructural lanthanide complexes, ultimately capturing the lanthanide contraction in solution solely on the basis of experimental observations. Our results show accelerated shortening of bonds at the beginning of the lanthanide series, which can be correlated to the separation trends shown by diglycolamides. The characterization of the radioactive Pm complex in an aqueous environment deepens our understanding of intra-lanthanide behaviour and the chemistry and separation of the f-block elements.
镧系稀土金属在现代技术中无处不在,但我们对第 61 号元素钷(Pm)的化学性质知之甚少,钷是一种高度放射性且难以获得的镧系元素。尽管它很重要,但 Pm 一直明显缺席于镧系元素的实验研究,阻碍了我们对所谓的镧系收缩现象的全面理解:这是元素周期表的一个基本方面,在普通化学教科书中都有引用。在这里,我们通过新合成的有机二甘醇酰胺配体,在水溶液中稳定螯合放射性钷核素(半衰期为 2.62 年)。使用同步加速器 X 射线吸收光谱和量子化学计算对所得同核 Pm 配合物进行研究,以确定配合物的配位结构和钷的键长。这些基本的见解允许对一整套同结构的镧系元素配合物进行完整的结构研究,最终仅基于实验观察就捕捉到了溶液中的镧系收缩。我们的结果表明,在镧系元素系列的开始处,键的缩短速度加快,这可以与二甘醇酰胺所表现出的分离趋势相关联。在水相环境中对放射性 Pm 配合物的表征加深了我们对镧系内行为以及 f 区元素的化学和分离的理解。