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Tailored Bifunctional Polymer for Plutonium Monitoring

机译:量身定制的用于functional监测的双功能聚合物

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Monitoring of actinides with sophisticated conventional methods is affected by matrix interferences, spectral interferences, isobaric interferences, polyatomic interferences, and abundance sensitivity problems. To circumvent these limitations, a self-supported disk and membrane-supported bifunctional polymer were tailored in the present work for acidity-dependent selectivity toward Pu(IV). The bifunctional polymer was found to be better than the polymer containing either a phosphate group or a sulfonic acid group in terms of (i) higher Pu(IV) sorption efficiency at 3-4 mol L~(-1) HNO_3, (ii) selective preconcentration of Pu(IV) in the presence of a trivalent actinide such as Am(III), and (iii) preferential sorption of Pu(IV) in the presence of a large excess of U(VI). The bifunctional polymer was formed as a self-supported matrix by bulk polymerization and also as a 1-2 μm thin layer anchored on a microporous poly(ether sulfone) by surface grafting. The proportions of sulfonic acid and phosphate groups in both the self-supported disk and membrane-supported bifunctional polymer were found to be the same as expected from the mole proportions of monomers in polymerizing solutions used for syntheses. α radiography by a solid-state nuclear track detector indicated fairly homogeneous anchoring of the bifunctional polymer on the surface of the membrane. Pu(IV) preconcentrated on a single bifunctional bead was used for determination of the Pu isotopic composition by thermal ionization mass spectrometry. The membrane-supported bifunctional polymer was used for preconcentration and subsequent quantification of Pu(IV) by α spectrometry using the absolute efficiency at a fixed counting geometry. The analytical performance of the membrane-supported-bifunctional-polymer-based α spectrometry method was found to be highly reproducible for assay of Pu(IV) in a variety of complex samples.
机译:用复杂的常规方法监测act系元素受到基质干扰,光谱干扰,等压干扰,多原子干扰和丰度敏感性问题的影响。为了克服这些限制,在本工作中针对酸对Pu(IV)的选择性,对自支撑盘和膜支撑双功能聚合物进行了定制。发现该双功能聚合物在以下方面优于含磷酸基团或磺酸基团的聚合物:(i)在3-4 mol L〜(-1)HNO_3下具有更高的Pu(IV)吸附效率,(ii)在三价act系元素(例如Am(III))存在下对Pu(IV)进行选择性预浓缩,以及(iii)在大量过量U(VI)存在下优先吸附Pu(IV)。通过本体聚合将双官能聚合物形成为自支撑基质,并且通过表面接枝将双官能聚合物形成为锚定在微孔聚醚砜上的1-2μm薄层。发现自支撑盘和膜支撑双功能聚合物中的磺酸和磷酸基团的比例与用于合成的聚合溶液中单体的摩尔比例所期望的相同。固态核径迹探测器的X射线照相显示双功能聚合物在膜表面上的锚固相当均匀。预浓缩在单个双功能珠上的Pu(IV)用于通过热电离质谱法测定Pu同位素组成。膜支撑的双功能聚合物用于预浓缩和随后通过α光谱使用固定计数几何形状下的绝对效率对Pu(IV)进行定量。发现基于膜支撑的双功能聚合物的α光谱法的分析性能可高度重现,可用于分析多种复杂样品中的Pu(IV)。

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