首页> 外文期刊>The Journal of Chemical Physics >Facing the challenge of predicting the standard formation enthalpies of n-butyl-phosphate species with ab initio methods
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Facing the challenge of predicting the standard formation enthalpies of n-butyl-phosphate species with ab initio methods

机译:面对预测与AB初始方法的正丁基 - 磷酸盐物质标准形成焓的挑战

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Tributyl-phosphate (TBP), a ligand used in the PUREX liquid-liquid separation process of spent nuclear fuel, can form an explosive mixture in contact with nitric acid that might lead to a violent explosive thermal runaway. In the context of safety of a nuclear reprocessing plant facility, it is crucial to predict the stability of TBP at elevated temperatures. So far, only the enthalpies of formation of TBP are available in the literature with rather large uncertainties, while those of its degradation products, di-(HDBP) and mono-(H2MBP), are unknown. In this goal, we have used state-of-the art quantum chemical methods to compute the formation enthalpies and entropies of TBP and its degradation products di-(HDBP) and mono-(H2MBP) in gas and liquid phases. Comparisons of levels of quantum chemical theory revealed that there are significant effects of correlation on their electronic structures, pushing for the need of not only high level of electronic correlation treatment, namely, local coupled cluster with single and double excitation operators and perturbative treatment of triple excitations, but also extrapolations to the complete basis to produce reliable and accurate thermodynamics data. Solvation enthalpies were computed with the conductor-like screening model for real solvents [COSMO-RS], for which we observe errors not exceeding 22 kJ mol(-1). We thus propose with final uncertainty of about 20 kJ mol(-1) standard enthalpies of formation of TBP, HDBP, and H2MBP which amounts to -1281.7 +/- 24.4, -1229.4 +/- 19.6, and -1176.7 +/- 14.8 kJ mol -1, respectively, in the gas phase. In the liquid phase, the predicted values are -1367.3 +/- 24.4, -1348.7 +/- 19.6, and -1323.8 +/- 14.8 kJ mol -1, to which we may add about -22 kJ mol -1 error from the COSMO-RS solvent model. From these data, the complete hydrolysis of TBP is predicted as an exothermic phenomena but showing a slightly endergonic process. Published by AIP Publishing.
机译:Tributyl-磷酸酯(TBP),用于核燃料的purex液 - 液分离过程中使用的配体,可以形成与硝酸接触的爆炸混合物,这可能导致剧烈的爆炸性热失控。在核再加工厂设施的安全性的背景下,预测高温下TBP的稳定性至关重要。到目前为止,只有TBP的形成焓只有相当大的不确定因素,而其降解产物,二(HDBP)和单 - (H2MBP)的焓也未知。在这一目标中,我们使用了最先进的量子化学方法来计算燃气和液相中TBP的形成焓和TBP的熵及其降解产物二(HDBP)和单(H2MBP)。量子化学理论水平的比较揭示了相关性对其电子结构的显着影响,不仅需要高水平的电子相关处理,即局部耦合簇,具有单双励磁操作员和三联扰动治疗激动,还要外推到完整的基础上,以产生可靠和准确的热力学数据。使用用于真实溶剂的导体筛选模型来计算溶剂化焓,用于实际溶剂[COSMO-RS],我们观察到不超过22kJ摩尔(-1)的误差。因此,我们提出了大约20kJ摩尔(-1)TBP,HDBP和H2MBP的标准焓的最终不确定度,其数量为-1281.7 +/- 24.4,-1229.4 +/- 19.6和-1176.7 +/- 14.8 KJ Mol -1分别在气相中。在液相中,预测值为-1367.3 +/- 24.4,-1348.7 +/- 19.6和-1323.8 +/- 14.8 kJ mol -1,我们可以从中添加约-22 kJ mol -1错误COSMO-RS溶剂模型。从这些数据中,TBP的完全水解预测为放热现象,但显示出略微止回过程。通过AIP发布发布。

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