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Comparative study of arsenic removal by iron-based nanomaterials: Potential candidates for field applications

机译:铁基纳米材料砷的比较研究:潜在候选矿物应用

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Graphene oxide supported magnetite (GM) and graphene oxide supported nanoscale zero-valent iron (GNZVI) nanohybrids were compared for arsenic removal at a wide pH range (3-9). While already published work reported high process efficiency for GM and GNZVI, they cannot be compared one-on-one given the non-identical experimental conditions. Each researcher team used different initial arsenic concentration, solution pH, and adsorbent dose. This study evaluated GM and GNZVI, bare magnetite (M), and bare nanoscale zero-valent iron (NZVI) for aqueous arsenic removal under similar experimental conditions. GNZVI worked more efficiently (>90%) in a wide pH range (3-9) for both As(Ⅲ) and As(Ⅴ). while GM was efficient (>90%) only at pH 3 for As(Ⅴ) and As(Ⅲ) removal was maximum of ~80% at pH 9. GNZVI also exhibited better aqueous dispersibility with a zeta potential of -21.02 mV compared to other adsorbents in this experiment. The arsenic removal based on normalized iron content indicated that the nanohybrids recorded improved arsenic removal compare to bare nanoparticles, and GNZVI worked the best. In NZVI-based nanomaterials (GNZVI and NZVI), electrostatic attraction played a limited role while surface complexation was dominant in removal of both the arsenic species. In case of M-based nanomaterials (GM and M), As(Ⅴ) removal was controlled by electrostatic attraction while As (Ⅲ) adsorption was ligand exchange and surface complexation. GNZVI has the potential for field application for drinking water arsenic removal.
机译:比较石墨烯氧化物负载的磁铁矿(GM)和石墨烯氧化物负载的纳米级零价铁(GNZVI)纳米胺,以便在宽pH范围(3-9)处的砷去除。虽然已经发表的工作报告了GM和GNZVI的高流程效率,但在非相同的实验条件下,它们不能再比较。每个研究人员团队使用不同的初始砷浓度,溶液pH和吸附剂量。本研究评估了在类似的实验条件下进行了砷砷水溶液去除的GM和GNZVI,裸磁铁矿(M)和裸纳米级零价铁(NZVI)。 GNZVI在宽的pH范围(3-9)中更有效地(> 90%),因为(Ⅲ)和(ⅴ)。虽然仅在pH 3的pH 3处仅在pH 3时高效(> 90%),并且在pH 9时去除最大〜80%.GNZVI也表现出更好的水分散性,与Zeta电位相比为-21.02 mV的Zeta电位。在本实验中的其他吸附剂。基于归一化铁含量的砷除去表明,纳米冬杂于纳米胺去除与裸纳米颗粒相比,GNZVI最佳地工作。在基于NZVI的纳米材料(GNZVI和NZVI)中,静电吸引力起到了有限的作用,而表面络合在除去砷物种中的占优势。在基于M的纳米材料(GM和M)的情况下,如(ⅴ)通过静电吸引控制,而AS(Ⅲ)吸附是配体交换和表面络合。 GNZVI具有饮用水砷的现场应用。

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