Understanding the Selective Extraction of the Uranyl Ion from Seawater with Amidoxime-Functionalized Materials: Uranyl Complexes of Pyrimidine-2-amidoxime

Sokratis T. Tsantis, Z. Lada, Sotiris G. Skiadas, D. Tzimopoulos, C. Raptopoulou, V. Psycharis, S. Perlepes
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Abstract

The study of small synthetic models for the highly selective removal of uranyl ions from seawater with amidoxime-containing materials is a valuable means to enhance their recovery capacity, leading to better extractants. An important issue in such efforts is to design bifunctional ligands and study their reactions with trans-{UO2}2+ in order to model the reactivity of polymeric sorbents possessing both amidoximate and another adjacent donor site on the side chains of the polymers. In this work, we present our results concerning the reactions of uranyl and pyrimidine-2-amidoxime, a ligand possessing two pyridyl nitrogens near the amidoxime group. The 1:2:2 {UO2}2+/pmadH2/external base (NaOMe, Et3N) reaction system in MeOH/MeCN provided access to complex [UO2(pmadH)2(MeOH)2] (1) in moderate yields. The structure of the complex was determined by single-crystal X-ray crystallography. The UVI atom is in a distorted hexagonal bipyramidal environment, with the two oxo groups occupying the trans positions, as expected. The equatorial plane consists of two terminal MeOH molecules at opposite positions and two N,O pairs of two deprotonated η2 oximate groups from two 1.11000 (Harris notation) pmadH− ligands; the two pyridyl nitrogen atoms and the –NH2 group remain uncoordinated. One pyridyl nitrogen of each ligand is the acceptor of one strong intramolecular H bond, with the donor being the coordinated MeOH oxygen atom. Non-classical Caromatic-H⋯X (X=O, N) intermolecular H bonds and π–π stacking interactions stabilize the crystal structure. The complex was characterized by IR and Raman spectroscopies, and the data were interpreted in terms of the known structure of 1. The solid-state structure of the complex is not retained in DMSO, as proven via 1H NMR and UV/Vis spectroscopic techniques as well as molar conductivity data, with the complex releasing neutral pmadH2 molecules. The to-date known coordination chemistry of pmadH2 is critically discussed. An attempt is also made to discuss the technological implications of this work.
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了解利用脒肟功能化材料从海水中选择性萃取铀离子:嘧啶-2-脒肟的铀络合物
研究用含脒氧化物的材料高选择性地去除海水中铀酰离子的小型合成模型,是提高其回收能力,从而开发出更好的萃取剂的重要手段。这方面的一个重要问题是设计双功能配体并研究它们与反式{UO2}2+ 的反应,以便模拟聚合物吸附剂的反应性,这种聚合物的侧链上同时具有脒氧肟和另一个相邻的供体位点。在这项研究中,我们展示了铀酰与嘧啶-2-脒肟反应的结果,嘧啶-2-脒肟是一种配体,在脒肟基团附近具有两个吡啶基硝基。在 MeOH/MeCN 中,1:2:2 {UO2}2+/pmadH2/ 外部碱(NaOMe、Et3N)反应体系提供了中等产率的复合物 [UO2(pmadH)2(MeOH)2] (1)。该复合物的结构是通过单晶 X 射线晶体学确定的。正如预期的那样,UVI 原子处于扭曲的六角双锥环境中,两个氧化基团占据反式位置。赤道面由位于相对位置的两个末端 MeOH 分子和来自两个 1.11000(Harris 符号)pmadH- 配体的两个去质子化 η2 氧化基团的两个 N、O 对组成;两个吡啶基氮原子和 -NH2 基团仍未配位。每个配体的一个吡啶基氮原子是一个强分子内 H 键的受体,供体是配位的 MeOH 氧原子。非经典的 Caromatic-H⋯X (X=O、N)分子间 H 键和π-π 堆积相互作用稳定了晶体结构。通过 1H NMR 和 UV/Vis 光谱技术以及摩尔电导率数据证明,该复合物在 DMSO 中不保留固态结构,复合物释放出中性 pmadH2 分子。本文对迄今已知的 pmadH2 配位化学进行了深入探讨。还试图讨论这项工作的技术意义。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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