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Chelex 树脂在薄膜扩散梯度技术中用于高分辨率金属评估的比较。

Comparison of Chelex based resins in diffusive gradients in thin-film for high resolution assessment of metals.

机构信息

Analytical, Environmental and Geochemistry (AMGC), Vrije Universiteit Brussel (VUB), Brussel, Belgium.

Analytical, Environmental and Geochemistry (AMGC), Vrije Universiteit Brussel (VUB), Brussel, Belgium; Department of Biology, Universiteit Antwerpen (UA), Wilrijk, Belgium.

出版信息

Talanta. 2018 Aug 15;186:397-405. doi: 10.1016/j.talanta.2018.04.085. Epub 2018 Apr 27.

Abstract

The passive sampling technique of diffusive gradients in thin-film (DGT) is widely used to determine 1D profiles (using Chelex-100 resin) and 2D images (using suspended particulate reagent-iminodiacetate resin, abbreviated as SPR-IDA resin) of metals in sediment pore waters and in oxic/anoxic soils. However, when deployed in anoxic sediments with high metal concentrations, Fe and Mn concentrations determined with the Chelex-100 resin gel were ~ 5 times higher than concentrations measured with the SPR-IDA resin gel. This discrepancy suggests that the SPR-IDA resin gel is saturated faster than the Chelex-100 resin gel. Here, we tested the adsorption capacity of the SPR-IDA resin gel and compared it to the Chelex-100 resin gel. Fe and Mn binding capacities on a SPR-IDA gel disc are less than 0.1 µmoles, which means that they are far below those on a Chelex-100 gel disc (around 3.2 μmoles), while competition with stronger binding metals such as Cu and Cd further lowers Fe and Mn capacities. This restricts the SPR-IDA resin gel to be used in contaminated marine sediments. We propose the use of a ground Chelex-100 resin, which is prepared by grinding Chelex-100 resin in a ball-mill prior to gel preparation. The capacities of Fe and Mn on a ground Chelex-100 resin gel disc are around 1.6 µmoles, more than 16 times higher than the capacity on SPR-IDA gel disc. In addition, the bead size of the ground Chelex-100 resin is small enough (~ 10 µm) to allow high resolution LA-ICP-MS imaging of Fe, Mn and trace metals in sediment pore waters as well as soils.

摘要

被动采样技术中的扩散梯度薄膜(DGT)技术被广泛应用于测定沉积物孔隙水中和有氧/缺氧土壤中金属的一维剖面(使用 Chelex-100 树脂)和二维图像(使用悬浮颗粒试剂-亚氨基二乙酸树脂,缩写为 SPR-IDA 树脂)。然而,当 DGT 被部署在高金属浓度的缺氧沉积物中时,使用 Chelex-100 树脂凝胶测定的 Fe 和 Mn 浓度比使用 SPR-IDA 树脂凝胶测定的浓度高约 5 倍。这种差异表明,SPR-IDA 树脂凝胶的饱和速度比 Chelex-100 树脂凝胶快。在这里,我们测试了 SPR-IDA 树脂凝胶的吸附能力,并将其与 Chelex-100 树脂凝胶进行了比较。SPR-IDA 树脂凝胶盘上的 Fe 和 Mn 结合容量小于 0.1 µmoles,这意味着它们远低于 Chelex-100 树脂凝胶盘上的结合容量(约 3.2 µmoles),而与 Cu 和 Cd 等结合能力更强的金属竞争进一步降低了 Fe 和 Mn 的结合容量。这限制了 SPR-IDA 树脂凝胶在受污染海洋沉积物中的应用。我们建议使用研磨 Chelex-100 树脂,即先在球磨机中研磨 Chelex-100 树脂,然后再制备凝胶。研磨 Chelex-100 树脂制备的 Chelex-100 树脂凝胶盘上的 Fe 和 Mn 结合容量约为 1.6 µmoles,比 SPR-IDA 树脂凝胶盘上的容量高 16 倍以上。此外,研磨 Chelex-100 树脂的珠粒尺寸较小(约 10 µm),足以允许对沉积物孔隙水中以及土壤中的 Fe、Mn 和痕量金属进行高分辨率的 LA-ICP-MS 成像。

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