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Rapid construction of 3D foam-like carbon nanoarchitectures via a simple photochemical strategy for capacitive deionization

机译:通过简单的光化学策略快速施工3D泡沫状碳纳米建筑,用于电容去离子

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摘要

Herein, 3D foam-like carbon nanoarchitectures are originally and rapidly constructed via a simple photochemical strategy as high-performance electrodes for capacitive deionization. It is found that the nanocomposites are obtained in a few seconds via UV radiation at room temperature. To date, this type of easily available nanocomposite has rarely been explored as precursors to fabricate carbon materials. Furthermore, the precise control of pore size and the milder synthetic conditions can be simultaneously realized in comparison with the conventional strategies. The resulting materials feature 3D foam-like interconnected open pore structures, ultrathin pore walls, highly accessible surface area, tunable pore size and low inner resistance. The above characteristics significantly enhance the accessible adsorption surface and facilitate the transport of ions, rendering the obtained electrodes adequate in attaining the desired deionization performance. The electrochemical tests showed that the obtained materials presented higher capacitance, good stability and low inner resistance. The deionization measurements demonstrated a higher capacity of 20.9 mg g(-1) in a 1000 mg L-1 NaCl solution at 1.4 V. Furthermore, it has been verified that the electrodes presented higher adsorption rate. The electrodes also presented excellent regeneration performance during the repeated adsorption-desorption experiments. In combination with the facile and efficient photochemical preparation process, this work may open up new probabilities for the widespread fabrication of high-quality 3D carbon nanoarchitectures for capacitive deionization and other energy-related applications.
机译:这里,3D泡沫状碳纳米建筑学原始,并通过简单的光化学策略作为高性能电极进行电容去离子的高性能构造。发现纳米复合材料在几秒钟内通过UV辐射在室温下获得。迄今为止,这种易于可用的纳米复合材料很少被探索为制造碳材料的前体。此外,与传统策略相比,可以同时实现对孔径的精确控制和较高的合成条件。所得材料具有3D泡沫状互连开孔结构,超薄孔壁,高度可接近的表面积,可调谐孔径和低内阻。上述特性显着增强了可进入的吸附表面,并促进离子的运输,使所获得的电极足够达到所需的去离子性能。电化学试验表明,所得材料呈现较高的电容,良好的稳定性和低内阻。去离子测量值在1.4V下显示在1000mg L-1 NaCl溶液中的较高容量为20.9mg(-1)。此外,已经验证了电极呈现较高的吸附速率。电极在重复的吸附 - 解吸实验期间也呈现出优异的再生性能。结合了便利和有效的光化学制备方法,这项工作可能为高质量3D碳纳米建筑的广泛制造提供了新的概率,用于电容去离子和其他能量相关的应用。

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  • 来源
    《RSC Advances》 |2017年第62期|共11页
  • 作者单位

    Shanghai Univ Res Ctr Nano Sci &

    Technol Shanghai 200444 Peoples R China;

    Shanghai Univ Res Ctr Nano Sci &

    Technol Shanghai 200444 Peoples R China;

    Shanghai Univ Res Ctr Nano Sci &

    Technol Shanghai 200444 Peoples R China;

    Shanghai Univ Res Ctr Nano Sci &

    Technol Shanghai 200444 Peoples R China;

    Shanghai Univ Res Ctr Nano Sci &

    Technol Shanghai 200444 Peoples R China;

    Shanghai Univ Res Ctr Nano Sci &

    Technol Shanghai 200444 Peoples R China;

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

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