化学
片麻岩
黑云母
吸附
氧化剂
氧化态
核化学
氧化还原
无机化学
地球化学
变质岩
地质学
金属
物理化学
古生物学
石英
有机化学
吸附
作者
Hyeonjin Eun,P. Szabó,Darlyn Rehhorn,Seungwoo Lee,Yongheum Jo,Marcus Altmaier,Jin-Young Lee,Xavier Gaona,Jong-Il Yun
出处
期刊:Radiochimica Acta
[R. Oldenbourg Verlag]
日期:2024-12-18
卷期号:113 (3): 181-194
被引量:1
标识
DOI:10.1515/ract-2024-0331
摘要
Abstract The uptake of Eu, Th, U, and Pu by Korean granite and biotite gneiss was investigated in a series of batch experiments. Experiments were conducted under well-defined redox conditions, i.e. , oxidizing (air), mildly reducing (Ar-atmosphere and buffered with hydroquinone, pe + pH ≈ 8–9), and strongly reducing (Ar-atmosphere and buffered with Na 2 S 2 O 4 , pe + pH ≈ 0.5–3). Radionuclide concentration, pH and E h were systematically monitored up to t ≤ 113 days after the addition of the radionuclide. The natural content of Eu, Th and U in pristine granite and biotite gneiss materials was quantified by means of alkaline fusion. Eu exhibited moderate sorption on biotite gneiss displaying higher distribution ratios ( R d ) compared to granite. This observation was possibly explained by the affinity of Ln(III)/An(III) towards biotite mineral absent in the investigated granite material. Strong sorption was observed for Th, U, and Pu in reducing systems where the predominance of the +IV oxidation state is expected. For these three systems, the strength of the uptake follows the order R d (Pu(IV)) > R d (U(IV)) > R d (Th(IV)), consistent with the hydrolysis strength of the corresponding aquo-ions. A significantly weaker sorption was observed for U and Pu under oxidizing conditions, although R d values are manifestly higher for Pu than U. Thermodynamic calculations for the oxidizing conditions predicted the predominance of U(VI) and Pu(V)/Pu(IV), explaining observed differences in retention under oxidizing conditions. These results contribute to a quantitative description and a better understanding of the retention of redox-sensitive radionuclides in crystalline host rocks. Emphasis is placed on the importance of utilizing both redox-stable probes ( e.g. , Eu, Th) and redox-sensitive actinides ( e.g. , U, Pu), as well as well-defined redox conditions for accurate predictions of radionuclide retention.
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