测定六氟化铀气相水解过程中铀酰气溶胶形成的中间产物和产物

IF 3.4 3区 化学 Q2 CHEMISTRY, MULTIDISCIPLINARY
Christian Mark Salvador, Jason M. Richards, Shannon M. Mahurin, Meng-Dawn Cheng and Joshua A. Hubbard
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引用次数: 0

摘要

六氟化铀水解形成 UO2F2 粒子的反应途径是核燃料处理过程中的一个重要环节,但目前仍仅限于理论计算。在此,我们利用不同浓度的气体前驱体和分子束质谱仪(MBMS)对中间产物和生成物进行了鉴定。通过将 300 ppm 和 2323 ppm 的水与 200 ppm 的六氟化铀接触,确定了含有不同铀原子数的化合物。就绝对信号强度而言,非铀化合物(如 (HF)3(H2O)H、(HF)4H 和 (H2O)2(HF)3)在质谱中占主导地位。根据在产物和气体反应物之间观察到的线性关系,这些化合物取决于六氟化铀的初始浓度。铀化合物的特征是以 UF6、UO3 和 UO2F2 为核心分子,每个物种主要存在于一定浓度的水中。单体化合物(如 UF6(HF)2(H2O)7、UO2F2(HF)7H 和 UO2F2(HF)5(H2O)3)或含有一个铀原子的种类,由于多个 HF 单元与铀核心结合,因此氟铀比(F/U)较高。二聚体(如 (UO2F2)2(H2O) 和 (UF6)2(H2O)4(HF)3H)和三聚体(如 (UO3)(UO2F2)2(HF)(H2O)3 和 (UO2F2)2UF6H2F)化合物的质量较高,但 F/U 和 H/U 比值较低。此外,在固定水含量(1.3% Rh 或 300 ppm)条件下,UF6 浓度(50-231 ppm)的递增在 949 个离子中显示出不同的趋势,其中一些离子与分子鉴定结果一致(如 (UO3)3(HF)2(H2O)H)。总之,这项研究提供了有关 UO2F2 形成途径的重要信息,对化学建模研究至关重要。质谱运行产生的大量信息值得进行聚类评估和因式分解,以获得有关 U-O-F 系统的更多信息。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

Determination of intermediates and products of the uranyl aerosol formation in UF6 hydrolysis in the gas phase†

Determination of intermediates and products of the uranyl aerosol formation in UF6 hydrolysis in the gas phase†

The reaction pathway of hydrolysis of UF6 to form UO2F2 particles is an essential insight in nuclear fuel processing; however, it is still limited to theoretical calculations. Herein, we present the identification of the intermediates and products using various gas precursor concentrations and molecular beam mass spectrometer (MBMS). Compounds containing different uranium atom counts were identified by exposing 300 and 2323 ppm water to 200 ppm UF6. Non-uranium compounds (e.g., (HF)3(H2O)H, (HF)4H, and (H2O)2(HF)3) dominate the mass spectra in terms of absolute signal intensity. These compounds were dependent on the initial concentration of UF6 based on the linear relationship observed between products and gas reactant. Uranium compounds were characterized by UF6, UO3, and UO2F2 core molecules, with each species existing predominantly in a certain water concentration. Monomeric compounds (e.g., UF6(HF)2(H2O)7, UO2F2(HF)7H, and UO2F2(HF)5(H2O)3) or species with one uranium atom had high fluorine to uranium ratio (F/U) due to several HF units bonded with the uranium core. Dimeric (e.g. (UO2F2)2(H2O) and (UF6)2(H2O)4(HF)3H) and trimeric (e.g., (UO3)(UO2F2)2(HF)(H2O)3 and (UO2F2)2UF6H2F) compounds persisted in high masses with low F/U and H/U ratios. Moreover, ramping of UF6 concentration (50–231 ppm) at fixed water content (1.3% Rh or 300 ppm) showed different trends among 949 ions, with some following consistently with molecular identification (e.g., (UO3)3(HF)2(H2O)H). Overall, this study provided important information regarding the formation pathway of UO2F2, which will be essential in chemical modelling studies. The vast information generated from mass spectrometric runs merits cluster evaluation and factorization to yield more information on the U–O–F system.

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来源期刊
Reaction Chemistry & Engineering
Reaction Chemistry & Engineering Chemistry-Chemistry (miscellaneous)
CiteScore
6.60
自引率
7.70%
发文量
227
期刊介绍: Reaction Chemistry & Engineering is a new journal reporting cutting edge research into all aspects of making molecules for the benefit of fundamental research, applied processes and wider society. From fundamental, molecular-level chemistry to large scale chemical production, Reaction Chemistry & Engineering brings together communities of chemists and chemical engineers working to ensure the crucial role of reaction chemistry in today’s world.
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