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Porous and hydrophobic graphene-based core-shell sponges for efficient removal of water contaminants

机译:多孔和疏水石墨烯的核心 - 壳海绵,用于有效地去除水污染物

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摘要

Water pollution is a global environmental problem that has attracted great concern, and functional carbon nanomaterials are widely used in water treatment. Here, to optimize the removal performance of both oil/organic matter and dye molecules, we fabricated porous and hydrophobic core-shell sponges by growing graphene on three-dimensional stacked copper nanowires. The interconnected pores between the one-dimensional nanocore-shells construct the porous channels within the sponge, and the multilayered graphene shells equip the sponge with a water contact angle over 120 degrees even under acidic and alkaline environments, which enables fast and efficient cleanup of oil on or under the water. The core-shell sponge can absorb oil or organic solvents with densities 40-90 times its own, and its oil-sorption capacity is much larger than those of other porous materials like activated carbon and loofah. On the other hand, the adsorption behavior of the core-shell sponge to dyes including methyl orange (MO) and malachite green (MG), also common water pollutants, was also measured. Dynamic adsorption of MG under cyclic compression demonstrated a higher adsorption rate than that in the static state, and an acidic environment was favorable for the adsorption of MO molecules. Finally, the adsorption isotherm for MO molecules was analyzed and fitted with the Langmuir model, and the adsorption kinetics were studied in depth as well.
机译:水污染是一个备受关注的全球性环境问题,功能性碳纳米材料在水处理中得到了广泛的应用。在这里,为了优化油/有机物和染料分子的去除性能,我们通过在三维堆叠的铜纳米线上生长石墨烯来制备多孔和疏水的核壳海绵。一维纳米核壳之间的互连孔构成了海绵内部的多孔通道,多层石墨烯壳使海绵在酸性和碱性环境下的水接触角超过120度,从而能够快速有效地清除水上或水下的油。核壳海绵可以吸收密度为自身40-90倍的油或有机溶剂,其吸油能力远大于活性炭和丝瓜等其他多孔材料。另一方面,还测定了核壳海绵对常见水污染物甲基橙(MO)和孔雀绿(MG)等染料的吸附行为。在循环压缩条件下,MG的动态吸附率高于静态吸附率,酸性环境有利于MO分子的吸附。最后,对钼分子的吸附等温线进行了分析,并用Langmuir模型进行了拟合,并对吸附动力学进行了深入研究。

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  • 来源
    《Nanotechnology》 |2021年第26期|共10页
  • 作者单位

    Hangzhou Dianzi Univ Coll Mat &

    Environm Engn New Energy Mat Res Ctr Hangzhou 310018 Peoples R China;

    Hangzhou Dianzi Univ Coll Mat &

    Environm Engn New Energy Mat Res Ctr Hangzhou 310018 Peoples R China;

    Hangzhou Dianzi Univ Coll Mat &

    Environm Engn New Energy Mat Res Ctr Hangzhou 310018 Peoples R China;

    Hangzhou Dianzi Univ Coll Mat &

    Environm Engn New Energy Mat Res Ctr Hangzhou 310018 Peoples R China;

    Hangzhou Dianzi Univ Coll Mat &

    Environm Engn New Energy Mat Res Ctr Hangzhou 310018 Peoples R China;

    Hangzhou Dianzi Univ Coll Mat &

    Environm Engn New Energy Mat Res Ctr Hangzhou 310018 Peoples R China;

    Hangzhou Dianzi Univ Coll Mat &

    Environm Engn New Energy Mat Res Ctr Hangzhou 310018 Peoples R China;

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  • 正文语种 eng
  • 中图分类 特种结构材料;
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