Department of Chemistry , Georgetown University , 37th and O Streets Northwest , Washington, D.C. 20057 , United States.
Department of Chemistry , Oregon State University , Corvallis , Oregon 97331 , United States.
Inorg Chem. 2018 Jun 18;57(12):7259-7269. doi: 10.1021/acs.inorgchem.8b00919. Epub 2018 Jun 7.
Organic ligands with carboxylate functionalities have been shown to affect the solubility, speciation, and overall chemical behavior of tetravalent metal ions. While many reports have focused on actinide complexation by relatively simple monocarboxylates such as amino acids, in this work we examined Th(IV) and U(IV) complexation by 4-hydroxybenzoic acid in water with the aim of understanding the impact that the organic backbone has on the solution and solid state structural chemistry of thorium(IV) and uranium(IV) complexes. Two compounds of the general formula [AnO(OH)(HO)(4-HB)]· nHO [An = Th (Th-1) and U (U-1); 4-HB = 4-hydroxybenzoate] were synthesized via room-temperature reactions of AnCl and 4-hydroxybenzoic acid in water. Solid state structures were determined by single-crystal X-ray diffraction, and the compounds were further characterized by Raman, infrared, and optical spectroscopies and thermogravimetry. The magnetism of U-1 was also examined. The structures of the Th and U compounds are isomorphous and are built from ligand-decorated oxo/hydroxo-bridged hexanuclear units. The relationship between the building units observed in the solid state structure of U-1 and those that exist in solution prior to crystallization as well as upon dissolution of U-1 in nonaqueous solvents was investigated using small-angle X-ray scattering, ultraviolet-visible optical spectroscopy, and dynamic light scattering. The evolution of U solution speciation as a function of reaction time and temperature was examined. Such effects as well as the impact of the ligand on the formation and evolution of hexanuclear U(IV) clusters to UO nanoparticles compared to prior reported monocarboxylate ligand systems are discussed. Unlike prior reported syntheses of Th and U(IV) hexamers where the pH was adjusted to ∼2 and 3, respectively, to drive hydrolysis, hexamer formation with the HB ligand appears to be promoted only by the ligand.
具有羧酸盐官能团的有机配体已被证明会影响四价金属离子的溶解性、形态和整体化学行为。虽然许多报告都集中在相对简单的一羧酸配体(如氨基酸)对锕系元素的络合作用,但在这项工作中,我们研究了在水中四价钍和铀与 4- 羟基苯甲酸的络合作用,目的是了解有机骨架对四价钍和铀配合物在溶液和固态结构化学的影响。通过室温下在水中反应 AnCl 和 4- 羟基苯甲酸,合成了通式为[AnO(OH)(HO)(4-HB)]·nHO[An=Th(Th-1)和 U(U-1);4-HB=4- 羟基苯甲酸]的两种化合物。通过单晶 X 射线衍射确定了固体结构,并通过拉曼、红外和光谱学以及热重分析进一步对化合物进行了表征。还研究了 U-1 的磁性。Th 和 U 化合物的结构是同构的,由配体修饰的氧/羟桥接的六核单元构建而成。使用小角 X 射线散射、紫外可见光谱和动态光散射研究了在 U-1 的固态结构中观察到的构建单元与在结晶前存在于溶液中和在非水溶剂中溶解 U-1 时存在的单元之间的关系。研究了反应时间和温度对 U 溶液形态的影响。讨论了这些效应以及配体对六核 U(IV)簇形成和演化的影响,并与之前报道的单核羧酸盐配体体系进行了比较。与之前报道的 Th 和 U(IV)六聚体的合成不同,在这些合成中,pH 值分别调整到~2 和 3 以驱动水解,而 HB 配体的六聚体形成似乎仅由配体促进。