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Quantum chemical calculations and spectroscopic measurements of spectroscopic and thermodynamic properties of given uranyl complexes in aqueous solutions with possible environmental and industrial applications

机译:具有可能的环境和工业应用的水溶液中给定铀酰络合物的光谱和热力学特性的量子化学计算和光谱测量

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A brief introduction into computational methodology and preliminary results for spectroscopic (excitation energies, vibrational frequencies in ground and excited electronic states) and thermodynamic (stability constants, standard enthalpies and entropies of complexation reactions) properties of some 1:1, 1:2 and 1:3 uranyl sulphato- and selenato- complexes in aqueos solutions will be given. The relativistic effects are included via Effective Core Potential (ECP), electron correlation via (TD)DFT/B3LYP (dispersion interaction corrected) and solvation is described via explicit inclusion of one hydration sphere beyond the coordinated water molecules. We acknowledge limits of this approximate description – more accurate calculations (ranging from semi-phenomenological two-component spin-orbit coupling up to four-component Dirac-Coulomb-Breit hamiltonian) and Molecular Dynamics simulations are in preparation. The computational results are compared with the experimental results from Time-resolved Laser-induced Fluorescence Spectroscopy (TRLFS) and UV-VIS spectroscopic studies (including our original experimental research on this topic). In case of the TRLFS and UV-VIS speciation studies, the problem of complex solution spectra decomposition into individual components is ill-conditioned and hints from theoretical chemistry could be very important. Qualitative agreement between our quantum chemical calculations of the spectroscopic properties and experimental data was achieved. Possible applications for geochemical modelling (e.g. safety studies of nuclear waste repositories, modelling of a future mining site) and analytical chemical studies (including natural samples) are discussed.
机译:简要介绍了光谱(励磁能量,地面和激发电子状态的振动频率)和热力学(稳定性常数,络合反应的标准焓和络合反应熵)的简要介绍,其特性为1:1,1:2和1 :将给出3烷基溶液中的3个铀酰硫酸盐和硒络合物。通过有效的核心电位(ECP)包括相对论的效果,通过明确包含一个水合球在配位水分子之外,通过明确包含一个水合球来描述通过(TD)DFT / B3LYP(分散相互作用)和溶剂化的电子相关性。我们承认这一近似描述的限制 - 更准确的计算(从半现象学双组分旋转轨道耦合到四分组分Dirac-Coulomb-Breay Hamiltonian)和分子动力学模拟正在制备。将计算结果与时间分辨激光诱导的荧光光谱(TRLF)和UV-Vis光谱研究的实验结果进行比较(包括我们对本主题的原始实验研究)。在TRLFS和UV-VIS的形态研究的情况下,复杂的溶液谱分解成单个组分的问题是不良条件,从理论化学的提示可能非常重要。实现了光谱性能和实验数据的量子化学计算之间的定性协议。讨论了地球化学建模的可能应用(例如核废料储存库的安全性研究,未来采矿现场的建模)和分析化学研究(包括天然样本)。

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