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首页> 外文期刊>Inorganic Chemistry >Trivalent Actinide and Lanthanide Complexation of 5,6-Dialkyl-2,6-bis(1,2,4-triazin-3-yl)pyridine (RBTP; R = H, Me, Et) Derivatives: A Combined Experimental and First-Principles Study
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Trivalent Actinide and Lanthanide Complexation of 5,6-Dialkyl-2,6-bis(1,2,4-triazin-3-yl)pyridine (RBTP; R = H, Me, Et) Derivatives: A Combined Experimental and First-Principles Study

机译:5,6-二烷基-2,6-双(1,2,4-三嗪-3-基)吡啶(RBTP; R = H,Me,Et)衍生物的三价Act系元素和镧系元素络合物:实验和首次结合原理研究

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摘要

Complexations of lanthanide ions with 5,6-dialkyl-2,6-bis(1,2,4-triazin-3-yl)pyridine [RBTP; R = H (HBTP), methyl (MeBTP), ethyl (EtBTP)] derivatives have been studied in the acetonitrile medium by electrospray ionization mass spectrometry, time-resolved laser-induced fluorescence spectroscopy, and UV–vis spectrophotometric titration. These studies were carried out in the absence and presence of a nitrate ion in order to understand the effect of the nitrate ion on their complexation behavior, particularly in the poor solvating acetonitrile medium where strong nitrate complexation of hard lanthanide ions is expected. Consistent results from all three techniques undoubtedly show the formation of lower stoichiometric complexes in the presence of excess nitrate ion. This kind of nitrate ion effect on the speciation of Ln3+ complexes of RBTP ligands has not so far been reported in the literature. Different Am3+ and Ln3+ complexes were observed with RBTP ligands in the presence of 0.01 M tetramethylammonium nitrate, and their stability constant values are determined using UV–vis spectrophotometric titrations. The formation of higher stoichiometric complexes and higher stability constants for Am3+ compared to Ln3+ ions indicates the selectivity of these classes of ligands. A single-crystal X-ray diffraction (XRD) study of europium(III) complexes shows the formation of a dimeric complex with HBTP and a monomeric complex with EtBTP, whereas MeBTP forms both the dimeric and monomeric complexes. Density functional theory calculations confirm the findings from single-crystal XRD and also predict the structures of Eu3+ and Am3+ complexes observed experimentally.
机译:镧系离子与5,6-二烷基-2,6-双(1,2,4-三嗪-3-基)吡啶的配位化合物[RBTP; R = H(HBTP),甲基(MeBTP),乙基(EtBTP)]衍生物已在乙腈介质中通过电喷雾电离质谱,时间分辨激光诱导荧光光谱和UV-vis分光光度滴定法进行了研究。这些研究是在不存在和存在硝酸根离子的情况下进行的,目的是了解硝酸根离子对其络合行为的影响,特别是在溶剂化较差的乙腈介质中,其中硬镧系元素离子会发生强硝酸盐络合。所有这三种技术的一致结果无疑表明在存在过量硝酸根离子的情况下形成了较低化学计量的配合物。迄今为止,尚未有文献报道这种硝酸根离子对RBTP配体的Ln3 +配合物的形成的影响。在存在0.01 M硝酸四甲基铵的情况下,使用RBTP配体观察到了不同的Am3 +和Ln3 +复合物,并使用UV-vis分光光度滴定法确定了它们的稳定性常数。与Ln3 +离子相比,Am3 +的较高化学计量的配合物和较高的稳定常数的形成表明这些配体的选择性。 of(III)配合物的单晶X射线衍射(XRD)研究表明,与HBTP形成了二聚体配合物,与EtBTP形成了单体配合物,而MeBTP形成了二聚体和单体配合物。密度泛函理论计算证实了单晶XRD的发现,并预测了实验观察到的Eu3 +和Am3 +配合物的结构。

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