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首页> 外文期刊>Physical chemistry chemical physics: PCCP >Strong influence of weak hydrogen bonding on actinide-phosphonate complexation: accurate predictions from DFT followed by experimental validation
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Strong influence of weak hydrogen bonding on actinide-phosphonate complexation: accurate predictions from DFT followed by experimental validation

机译:弱氢键对阳极素 - 膦酸酯络合的强烈影响:从DFT跟随实验验证的准确预测

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摘要

Among the varied classes of weak hydrogen bond, the CHO type is one of immense interest as it governs the finer structures of biological and chemical molecules, hence determining their functionalities. In the present work, this weak hydrogen bond has been shown to strongly influence the complexation behaviour of uranyl nitrate [UO2(NO3)(2)] with diamyl-H-phosphonate (DAHP) and its branched isomer disecamyl-H-phosphonate (DsAHP). The structures of the bare ligands and complexes have been optimized by density functional theory (DFT) calculations. Surprisingly, despite having the same chemical composition the branched UO2(NO3)(2)2DsAHP complex shows a remarkably higher stability (by approximate to 14 kcal mol(-1)) compared to the UO2(NO3)(2)2DAHP complex. Careful inspection of the optimized structures reveals the existence of multiple CHO hydrogen-bonding interactions between the nitrate oxygens or U?O oxygens and the -hydrogens in the alkyl chains of the ligands. Comparatively stronger such bonds are found in the UO2(NO3)(2)2DsAHP complex. The binding free energies associated with the complexes are computed and favoured superior binding energetics for the more stable UO2(NO3)(2)2DsAHP complex. Calculations involving diisoamyl-H-phosphonate (DiAHP) and its complexes have also been performed. Theoretical predictions are experimentally tested by carrying out the extraction of U(vi) from nitric acid media using these ligands. DAHP, DsAHP and DiAHP are synthesised, characterised by NMR and evaluated for their physicochemical properties viz. viscosity, density and aqueous solubility. It was experimentally discovered that indeed DsAHP complexation with uranyl nitrate is more favoured. H-phosphonates are generically classified as acidic extractants owing to the formation of an enol tautomer at lower acidities, hence complexing the metal ion by proton exchange. Our experiments interestingly reveal a neutral ligand characteristic for DsAHP alone which is generically an acidic extractant. Furthermore, the enol tautomer of H-phosphonates that governs their extraction profiles at low acidities is also explored by DFT and the anomalous pH dependent complexation trend of DsAHP could be successfully explained. The extractions of Pu(iv) and Th(iv) have also been carried out in addition to U(vi). Solvent extraction behaviour of Am(iii) was also studied with all three ligands; the positive binding energies computed for the Am(iii) complexation corroborate with our experimental results on the poor extraction of Am(iii).
机译:在不同类别的弱氢键中,CHO类型是巨大的兴趣之一,因为它控制了生物和化学分子的更精细结构,因此确定其功能。在本作过程中,已经显示出这种弱氢键强烈影响硝酸铀酰基[UO 2(2)]的络合行为[UO 2(2)]与二氨基 - 膦酸酯(DAHP)及其支链异构体脱膦基-H-膦酸酯(DsaHP )。裸配体和复合物的结构已经通过密度泛函理论(DFT)计算进行了优化。令人惊讶的是,尽管具有相同的化学成分,但与UO 2(NO 3)(2)2daHP复合物相比,支化UO 2(2)2DSAHP复合物显示出显着更高的稳定性(通过近似至14kcal摩尔(-1))。仔细检查优化的结构揭示了硝酸氧基或Uβ氧气之间的多种CHO氢键相互作用和配体的烷基链中的-HOWDEN。相对较强的这种键在UO 2(NO 3)(2)2DSAHP复合物中发现。与复合物相关的结合可加能得到了更稳定的UO 2(2)2DSAHP复合物的高优异的结合能量。还进行了涉及二异戊酰-H-膦酸酯(DIAHP)及其复合物的计算。通过使用这些配体从硝酸培养基中执行U(VI)的提取来实验测试理论预测。合成DAHP,DSAHP和DIAHP,其特征在于NMR,并评估其物理化学特性VIZ。粘度,密度和含水溶解度。实验地发现,实际上与硝酸铀酰络合更有利。由于在较低酸度下形成烯醇互变异构体,H-膦酸盐通常被分类为酸性萃取剂,因此通过质子交换络合金属离子。我们的实验有趣地揭示了单独的DSAHP的中性配体特征,其通常是酸性萃取剂。此外,通过DFT探讨了在低酸度下治理其萃取曲线的H-膦酸盐的烯醇互变异构体,并且可以成功解释DSAHP的异常pH依赖性络合趋势。除了U(VI)之外,还进行了PU(IV)和TH(IV)的提取。还使用三种配体研究了am(III)的溶剂萃取行为;为AM(III)络合而计算的正粘合能量在我们的实验结果上进行了证实,对am(III)的不良提取。

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