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Bubble-propelled micromotors based on hierarchical MnO2 wrapped carbon nanotube aggregates for dynamic removal of pollutants

机译:基于等级MnO2包裹的碳纳米管聚集体的泡沫驱散的微多簇用于动态去除污染物

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摘要

Water pollution is currently an urgent public health and environmental issue. Bubble-propelled micromotors might offer an effective approach for dealing with environmental contamination. Herein, we present the synthesis of multi-walled carbon nanotube (MWCNT)/manganese dioxide (MnO2) micromotors based on MWCNT aggregates as microscale templates by a simple one-step hydrothermal procedure. The morphology, composition, and structure of the obtained MWCNT/MnO2 micromotors were characterized in detail. The MnO2 nanoflakes formed a catalytic layer on the MWCNT backbone, which promoted effective bubble evolution and propulsion at remarkable speeds of 359.31 mu m s(-1). The bubble velocity could be modulated based on the loading of MnO2 nanoflakes. The rapid movement of these MWCNT/MnO2 catalytic micromotors resulted in a highly efficient moving adsorption platform, which considerably enhanced the effectiveness of water purification. Dynamic adsorption of organic dyes by the micromotors increased the degradation rate to approximately 4.8 times as high as that of their corresponding static counterparts. The adsorption isotherms and adsorption kinetics were also explored. The adsorption mechanism was well fitted by the Langmuir model, following pseudo-second-order kinetics. Thus, chemisorption of Congo red at the heterogeneous MnO2 wrapped microimotor surface was the rate determining step. The high propulsion speed and remarkable decontamination efficiency of the MWCNT/MnO2 micromotors indicate potential for environmental contamination applications.
机译:水污染目前是一种紧急的公共卫生和环境问题。泡沫推进的微电机可能提供有效处理环境污染的方法。在此,我们通过简单的一步水热程序,基于MWCNT聚集的MWCNT聚集的多壁碳纳米管(MWCNT)/二氧化锰(MNO2)微量运动的合成。详细表征了所得MWCNT / MNO2微量运动会的形态,组合物和结构。 MnO2纳米薄片在MWCNT主链上形成催化层,其在显着速度为359.31μms(-1)的显着速度下促进有效的气泡蒸馏和推进。可以基于MnO2纳米薄片的负载来调节气泡速度。这些MWCNT / MNO2催化微量运动器的快速运动导致高效的移动吸附平台,可显着提高了水净化的有效性。 Microomotors的动态吸附有机染料将降解速率提高至相应静态对应物的降解速率至高度为4.8倍。还探讨了吸附等温线和吸附动力学。在伪二阶动力学之后,Langmuir模型的吸附机制很好地拟合。因此,在非均相MNO2包装微电机表面处的刚果红色的化学吸附是速率确定步骤。 MWCNT / MNO2微电机的高推进速度和显着的去污效率表示环境污染应用的可能性。

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  • 来源
    《RSC Advances》 |2020年第25期|共10页
  • 作者单位

    Fujian Univ Technol Sch Mat Sci &

    Engn 3 Xueyuan Rd Fuzhou 350108 Peoples R China;

    Fujian Univ Technol Sch Mat Sci &

    Engn 3 Xueyuan Rd Fuzhou 350108 Peoples R China;

    Fujian Univ Technol Sch Mat Sci &

    Engn 3 Xueyuan Rd Fuzhou 350108 Peoples R China;

    Fujian Univ Technol Sch Mat Sci &

    Engn 3 Xueyuan Rd Fuzhou 350108 Peoples R China;

    Fujian Univ Technol Sch Mat Sci &

    Engn 3 Xueyuan Rd Fuzhou 350108 Peoples R China;

    Fujian Univ Technol Sch Mat Sci &

    Engn 3 Xueyuan Rd Fuzhou 350108 Peoples R China;

    Fujian Univ Technol Sch Mat Sci &

    Engn 3 Xueyuan Rd Fuzhou 350108 Peoples R China;

    Fujian Univ Technol Sch Mat Sci &

    Engn 3 Xueyuan Rd Fuzhou 350108 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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