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Combining EXAFS and Computer Simulations to Refine the Structural Description of Actinyls in Water

机译:结合EXAFS和计算机模拟来优化水中挥发胶的结构描述

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摘要

EXAFS spectroscopy is one of the most used techniques to solve the structure of actinoid solutions. In this work a systematic analysis of the EXAFS spectra of four actinyl cations, [UO2]2+, [NpO2]2+, [NpO2]+ and [PuO2]2+ has been carried out by comparing experimental results with theoretical spectra. These were obtained by averaging individual contributions from snapshots taken from classical Molecular Dynamics simulations which employed a recently developed [AnO2]2+/+ –H2O force field based on the hydrated ion model using a quantum-mechanical (B3LYP) potential energy surface. Analysis of the complex EXAFS signal shows that both An-Oyl and An-OW single scattering paths as well as multiple scattering ones involving [AnO2]+/2+ molecular cation and first-shell water molecules are mixed up all together to produce a very complex signal. Simulated EXAFS from the B3LYP force field are in reasonable agreement for some of the cases studied, although the k= 6–8 Å−1 region is hard to be reproduced theoretically. Except uranyl, all studied actinyls are open-shell electron configurations, therefore it has been investigated how simulated EXAFS spectra are affected by minute changes of An-O bond distances produced by the inclusion of static and dynamic electron correlation in the quantum mechanical calculations. A [NpO2]+−H2O force field based on a NEVPT2 potential energy surface has been developed. The small structural changes incorporated by the electron correlation on the actinyl aqua ion geometry, typically smaller than 0.07 Å, leads to improve the simulated spectrum with respect to that obtained from the B3LYP force field. For the other open-shell actinyls, [NpO2]2+ and [PuO2]2+, a simplified strategy has been adopted to improve the simulated EXAFS spectrum. It is computed taking as reference structure the NEVPT2 optimized geometry and including the DW factors of their corresponding MD simulations employing the B3LYP force field. A better agreement between the experimental and the simulated EXAFS spectra is found, confirming the a priori guess that the inclusion of dynamic and static correlation refine the structural description of the open-shell actinyl aqua ions.
机译:EXAFS光谱是解决挥发性溶液结构的最常用技术之一。在这项工作中,通过将实验结果与理论光谱比较,对四个抗粘接阳离子,[UO 2] 2+,[NPO 2] 2+,[NPO2] +和[遗布] 2+进行的系统分析。这些是通过从经典分子动力学模拟中的快照来平均基于水合离子模型的经典分子动力学模拟所取的个体贡献来获得,该贡献使用量子 - 机械(B3LYP)电位能量表面来实现基于水合离子模型的常规分子动力学模拟。复杂的EXAFS信号的分析表明,奥奥尔和OYL单次散射路径以及涉及涉及[ANO2] + / 2+分子阳离子和第一壳水分子的多个散射均匀散射均匀地混合在一起以产生非常复杂信号。来自B3Lyp力领域的模拟EXAFS对于研究的一些病例有合理的协议,尽管k = 6-8埃-1区域很难理论上难以再现。除铀外,所有研究的抗粘接基是开放式壳体配置,因此已经研究了模拟的EXAFS光谱如何受到在量子力学计算中包含静态和动态电子相关的静态和动态电子相关产生的AN-O键距离的微小变化的影响。已经开发了基于NEVPT2电位能量表面的[NPO2] + -H2O力场。通过在抗粘接性灰色的离子几何上的电子相关性的小结构变化,通常小于0.07,导致关于从B3LYP力场获得的模拟频谱。对于其他开壳散,[NPO2] 2+和[PUO2] 2+,已采用简化的策略来改善模拟的EXAFS光谱。它被计算为参考结构NEVPT2优化几何体,包括采用B3LYP力场的相应MD模拟的DW因子。发现实验和模拟的EXAFS光谱之间的更好的一致性,确认先验猜测包括动态和静态相关性细化开口壳挥发性水上离子的结构描述。

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