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首页> 外文期刊>Hydrometallurgy >Recovery of strontium (Sr2+) from seawater using a hierarchically structured MnO2/C/Fe3O4 magnetic nanocomposite
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Recovery of strontium (Sr2+) from seawater using a hierarchically structured MnO2/C/Fe3O4 magnetic nanocomposite

机译:使用分层结构的MNO2 / C / Fe3O4磁性纳米复合材料从海水中从海水中恢复锶(SR2 +)

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摘要

The recovery of strontium ions (Sr2+) from seawater has attracted much attention as an approach to securing Sr resources to meet increasing industrial demand. In this study, we synthesized a magnetic MnO2 nanocomposite (MnO2/C/Fe3O4) using a simple redox reaction under ambient conditions and applied this nanocomposite to the extraction of Sr2+ from natural seawater. The synthesized nanocomposite exhibited a hierarchical structure of MnO2, carbon, and Fe3O4 with a saturation magnetization of 25 emu/g that enabled effective separation under an external magnetic force. Regardless of the initial Sr2+ concentration, the adsorption of Sr2+ onto MnO2/C/Fe3O4 proceeded rapidly (within < 10 min) following a pseudo-second-order kinetic model and agreed well with the Langmuir isotherm model, indicating a maximum adsorption capacity of 42 mg/g. Among the competitive ions, Mg2+ and Ca2+ significantly hindered se(+) adsorption onto MnO2/C/Fe3O4, whereas Na+ and K+ had little effect on Sr2+ adsorption. A detailed study of the distribution coefficient (K-d) revealed 11.2-fold and 1.8-fold higher selectivities toward Sr2+ than toward Mg2+ and Ca2+, respectively. The Sr2+ ions adsorbed onto MnO2/C/Fe3O4 were completely recovered through desorption in 0.1 M HCl eluent. Finally, a Sr2+-enriched solution with a concentration of 501 mg/L could be obtained via seawater adsorption and subsequent acid desorption over 8 iterative cycles, demonstrating its effectiveness for practical applications of Sr2+ recovery from seawater.
机译:来自海水的锶离子(SR2 +)的回收引起了很多关注,以确保SR资源以满足越来越多的工业需求。在该研究中,我们在环境条件下使用简单的氧化还原反应合成磁性MNO2纳米复合材料(MNO2 / C / Fe3O4),并将该纳米复合材料从天然海水中施加到SR2 +的萃取中。合成的纳米复合材料表现出MNO2,碳和Fe3O4的层次结构,其饱和磁化为25兆/克,使能在外部磁力下进行有效的分离。无论初始SR2 +浓度如何,SR2 +上的SR2 +上的吸附在伪二阶动力学模型后迅速(在<10分钟内),并与Langmuir等温模型一致,表明最大吸附容量为42 mg / g。在竞争性离子中,Mg2 +和Ca2 +显着阻碍SE(+)吸附在MNO2 / C / Fe3O4上,而Na +和K +对SR2 +吸附几乎没有影响。对分布系数(K-D)的详细研究显露于SR2 +的11.2倍和1.8倍,分别比朝向Mg2 +和Ca2 +。吸附在MnO 2 / C / Fe 3 O 4上的SR2 +离子通过0.1M HCl洗脱液中的解吸完全回收。最后,可以通过海水吸附和随后的酸解吸获得浓度为501mg / L的SR2 +-烯丙基溶液在8次迭代循环中获得,证明了SR2 +从海水中恢复的实际应用的有效性。

著录项

  • 来源
    《Hydrometallurgy》 |2020年第2020期|共8页
  • 作者单位

    Korea Inst Geosci &

    Mineral Resources Geol Environm Res Div Daejeon 34132 South Korea;

    Ecopro Innovat Co LTD R&

    D Team Chungbuk 28116 South Korea;

    Korea Inst Geosci &

    Mineral Resources Mineral Resources Res Div Daejeon 34132 South Korea;

    Korea Inst Geosci &

    Mineral Resources Mineral Resources Res Div Daejeon 34132 South Korea;

    Korea Inst Geosci &

    Mineral Resources Mineral Resources Res Div Daejeon 34132 South Korea;

  • 收录信息
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类 冶金技术;
  • 关键词

    Strontium; Seawater; Recovery; Magnetic separation; Enrichment;

    机译:锶;海水;恢复;磁分离;富集;

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