Xue Tianjiao, Ding You-Song, Jiang Xue-Lian, Tao Lizhi, Li Jun, Zheng Zhiping
Department of Chemistry, Southern University of Science and Technology, Shenzhen, Guangdong 518055, China.
Key University Laboratory of Rare Earth Chemistry of Guangdong, Southern University of Science and Technology, Shenzhen, Guangdong 518055, China.
Precis Chem. 2023 Oct 2;1(10):583-591. doi: 10.1021/prechem.3c00065. eCollection 2023 Dec 25.
Coordination chemistry of rare-earth elements has been dominated by the +3 oxidation state. Complexes with higher-valence lanthanide ions are synthetically challenging but are of fundamental research interest and significance as advanced molecular materials. Herein, four tetravalent terbium complexes (-) of the common formula [Tb(OSiPh)L] (L = ethylene glycol dimethyl ether (DME), 2,2-bipyridine (bpy), 2,2-bipyrimidine (bpym), and 1,10-phenanthroline (phen)) are reported. Crystallographic analyses reveal in each of these complexes a hexacoordinate Tb(IV) ion situated in a distorted octahedral coordination environment formed by four triphenylsiloxido ligands and a bidentate chelating ligand. The use of chelating ligands enhances the stability of the resulting complexes over their THF solvate precursor. More significantly, the aromatic N-chelating ligands have been found to tune effectively the electronic structures of the complexes, as evidenced by the sizable potential shifts observed for the quasi-reversible redox Tb(IV/III) process and by the changes in their absorption spectra. The experimental findings are augmented with quantum theoretical calculations in which the ligand π-donation to the 5 orbitals of the Tb(IV) center is found to be primarily responsible for stability enhancement and the corresponding changes of physical properties observed. Magnetic measurements and results from electron paramagnetic resonance studies produced small absolute values of zero-field splittings of these complexes, ranging from 0.1071(22) to 1.1484(112) cm and comparable to the values reported for analogous Tb(IV) complexes.
稀土元素的配位化学一直以 +3 氧化态为主导。与高价镧系离子形成的配合物在合成上具有挑战性,但作为先进的分子材料,具有基础研究价值和意义。本文报道了四种通式为 [Tb(OSiPh)L] 的四价铽配合物(-)(L = 乙二醇二甲醚(DME)、2,2-联吡啶(bpy)、2,2-联嘧啶(bpym)和 1,10-菲咯啉(phen))。晶体学分析表明,在这些配合物中,每个六配位的 Tb(IV) 离子都位于由四个三苯基硅氧基配体和一个双齿螯合配体形成的扭曲八面体配位环境中。螯合配体的使用提高了所得配合物相对于其 THF 溶剂化物前体的稳定性。更重要的是,已发现芳香族 N-螯合配体可有效调节配合物的电子结构,这可通过准可逆氧化还原 Tb(IV/III) 过程中观察到的显著电位变化及其吸收光谱的变化得到证明。量子理论计算增强了实验结果,其中发现配体向 Tb(IV) 中心的 5 轨道的 π 供体作用主要负责稳定性增强以及观察到的相应物理性质变化。磁性测量和电子顺磁共振研究结果表明,这些配合物的零场分裂绝对值很小,范围从 0.1071(22) 到 1.1484(112) cm,与类似 Tb(IV) 配合物报道的值相当。