Bokouende Sergely Steephen, Kulasekara D Nuwangi, Worku Sara A, Ward Cassandra L, Kajjam Aravind B, Lutter Jacob C, Allen Matthew J
Department of Chemistry, Wayne State University, 5101 Cass Avenue, Detroit, Michigan 48202, United States.
Lumigen Instrument Center, Wayne State University, 5101 Cass Avenue, Detroit, Michigan 48202, United States.
Inorg Chem. 2024 May 27;63(21):9434-9450. doi: 10.1021/acs.inorgchem.3c02752. Epub 2023 Nov 28.
Low-valent f-block metals have intrinsic luminescence, electrochemical, and magnetic properties that are modulated with ligands, causing the coordination chemistry of these metals to be imperative to generating critical insights needed to impact modern applications. To this end, we synthesized and characterized a series of twenty-seven complexes of f-metal ions including Eu, Yb, Sm, and U and hexanuclear clusters of La and Ce to study the impact of tris[2-(2-methoxyethoxy)ethyl]amine, a flexible acyclic analogue of the extensively studied 2.2.2-cryptand, on the coordination chemistry and photophysical properties of low-valent f-block metals. We demonstrate that the flexibility of the ligand enables luminescence tunability over a greater range than analogous cryptates of Eu in solution. Furthermore, the ligand also displays a variety of binding modes to f-block metals in the solid state that are inaccessible to cryptates of low-valent f-block metals. In addition to serving as a ligand for f-block metals of various sizes and oxidation states, tris[2-(2-methoxyethoxy)ethyl]amine also deprotonates water molecules coordinated to trivalent triflate salts of f-block metal ions, enabling the isolation of hexanuclear clusters containing either La or Ce. The ligand was also found to bind more tightly to Yb and U in the solid state compared to 2.2.2-cryptand, suggesting that it can play a role in the isolation of other low-valent f-block metals such Cf, Np, and Pu. We expect that our findings will inspire applications of tris[2-(2-methoxyethoxy)ethyl]amine in the design of light-emitting diodes and the synthesis of extremely reducing divalent f-block metal complexes that are of interest for a wide range of applications.
低价f族金属具有固有的发光、电化学和磁性特性,这些特性可通过配体进行调节,这使得这些金属的配位化学对于获得影响现代应用所需的关键见解至关重要。为此,我们合成并表征了一系列包含铕(Eu)、镱(Yb)、钐(Sm)和铀(U)的27种f族金属离子配合物以及镧(La)和铈(Ce)的六核簇,以研究三[2-(2-甲氧基乙氧基)乙基]胺(一种对广泛研究的2.2.2-穴醚的柔性无环类似物)对低价f族金属的配位化学和光物理性质的影响。我们证明,该配体的柔性使得在溶液中比铕的类似穴合物具有更大范围的发光可调性。此外,该配体在固态下还对f族金属表现出多种结合模式,而低价f族金属的穴合物无法实现这些模式。除了作为各种尺寸和氧化态的f族金属的配体之外,三[2-(2-甲氧基乙氧基)乙基]胺还能使与f族金属离子的三价三氟甲磺酸盐配位的水分子去质子化,从而能够分离出含有镧或铈的六核簇。还发现该配体在固态下与镱和铀的结合比2.2.2-穴醚更紧密,这表明它可以在分离其他低价f族金属(如锎(Cf)、镎(Np)和钚(Pu))中发挥作用。我们期望我们的发现将激发三[2-(2-甲氧基乙氧基)乙基]胺在发光二极管设计以及合成对广泛应用具有重要意义的极具还原性的二价f族金属配合物中的应用。