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首页> 外文期刊>RSC Advances >Self-assembly of 2D-metal-organic framework/graphene oxide membranes as highly efficient adsorbents for the removal of Cs+ from aqueous solutions
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Self-assembly of 2D-metal-organic framework/graphene oxide membranes as highly efficient adsorbents for the removal of Cs+ from aqueous solutions

机译:2D-金属 - 有机骨架/石墨烯膜的自组装作为高效的吸附剂,用于从水溶液中除去Cs +

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摘要

The potential toxicity and irreversibility of radionuclide Cs place severe pressure on the natural environment, which has become one of the most forefront pollution problems in nuclear energy utilization. To solve this problem, novel self-assembled membranes consisting of two-dimensional (2D) metal-organic frameworks (MOFs) and graphene oxide (GO) were prepared by a facile filtration method, which can efficiently absorb Cs+ from aqueous solutions. The batch experimental results showed that the sorption of Cs+ on the GO/Co-MOF composite membrane was strongly dependent on the addition mass and the membrane compositions. Thus, the dominant interaction mechanism was interface or surface complexation and electrostatic interaction. The maximum sorption efficiency of Cs+ on GO/Co-MOF was 88.4% with 8 mg addition mass at pH = 7.0 and 299 K. Detailed FT-IR and XPS analyses suggested that the efficient synergistic effects in the unique architectures of GO/Co-MOF play an important role in the high sorption capacity of Cs+. The facile preparation method and the highly-efficient Cs+ removal behaviour of GO/Co-MOF make the novel membrane a promising candidate for the elimination of radionuclide contamination.
机译:放射性核素CS的潜在毒性和不可逆转性对自然环境的严重压力,这成为核能利用中最前沿的污染问题之一。为了解决这个问题,通过容易过滤方法制备由二维(2D)金属 - 有机骨架(MOF)和石墨烯(GO)组成的新型自组装膜,其可以有效地从水溶液中吸收Cs +。分批实验结果表明,Go / Co-Mof复合膜上的Cs +的吸附强烈依赖于加成质量和膜组合物。因此,显性相互作用机理是界面或表面络合和静电相互作用。 Cs + On Go / Co-Mof的最大吸附效率为88.4%,pH = 7.0和299 K.详细的FT-IR和XPS分析表明,Go / Co-独特的架构中有效的协同效应MOF在CS +的高吸附能力中起重要作用。 Bo / Co-Mof的容易制备方法和高效的Cs +去除行为使新的膜成为消除放射性核素污染的有希望的候选者。

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  • 来源
    《RSC Advances 》 |2018年第71期| 共10页
  • 作者单位

    Beihang Univ Sch Instrumentat Sci &

    Optoelect Engn 37 XueYuan Rd Beijing 100083 Peoples R China;

    Beihang Univ Sch Instrumentat Sci &

    Optoelect Engn 37 XueYuan Rd Beijing 100083 Peoples R China;

    Tsinghua Univ Grad Sch Shenzhen Shenzhen 518055 Peoples R China;

    Qiqihar Univ Sch Mat Sci &

    Engn Qiqihar 161006 Peoples R China;

    Shenzhen Univ Coll Mechatron &

    Control Engn Guangdong Prov Key Lab Micro Nano Optomechatron E Shenzhen 518060 Peoples R China;

    Hong Kong Polytech Univ Dept Mech Engn Kowloon Hong Kong Peoples R China;

    Shenzhen Univ Coll Mechatron &

    Control Engn Guangdong Prov Key Lab Micro Nano Optomechatron E Shenzhen 518060 Peoples R China;

    Qiqihar Univ Sch Mat Sci &

    Engn Qiqihar 161006 Peoples R China;

    Hong Kong Polytech Univ Dept Mech Engn Kowloon Hong Kong Peoples R China;

    Beihang Univ Sch Instrumentat Sci &

    Optoelect Engn 37 XueYuan Rd Beijing 100083 Peoples R China;

    Hong Kong Polytech Univ Dept Mech Engn Kowloon Hong Kong Peoples R China;

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  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类 化学 ;
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