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首页> 外文期刊>Water Research >Sulfate-doped Fe_3O_4/Al_2O_3 nanoparticles as a novel adsorbent for fluoride removal from drinking water
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Sulfate-doped Fe_3O_4/Al_2O_3 nanoparticles as a novel adsorbent for fluoride removal from drinking water

机译:硫酸盐掺杂的Fe_3O_4 / Al_2O_3纳米颗粒作为一种新型的饮用水中除氟吸附剂

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摘要

A novel adsorbent of sulfate-doped Fe_3O_4/Al_2O_3 nanoparticles with magnetic separability was developed for fluoride removal from drinking water. The nanosized adsorbent was characterized and its performance in fluoride removal was evaluated. Kinetic data reveal that the fluoride adsorption was rapid in the beginning followed by a slower adsorption process, nearly 90% adsorption can be achieved within 20 min and only 10-15% additional removal occurred in the following 8 h. The fluoride adsorption isotherm was well described by Elovich model. The calculated adsorption capacity of this nanoadsorbent for fluoride by two-site Langmuir model was 70.4 mg/g at pH 7.0. Moreover, this nanoadsorbent performed well over a considerable wide pH range of 4-10, and the fluoride removal efficiencies reached up to 90% and 70% throughout the pH range of 4-10 with initial fluoride concentrations of 10 mg/L and 50 mg/L, respectively. The observed sulfate-fluoride displacement and decreased sulfur content on the adsorbent surface reveal that anion exchange process was an important mechanism for fluoride adsorption by the sulfate-doped Fe_3O_4/Al_2O_3 nanoparticles. Moreover, a shift of the pH of zero point charge (pH_(PZC)) of the nanoparticles and surface analysis based on X-ray photoelectron spectroscopy (XPS) suggest the formation of inner-sphere fluoride complex at the aluminum center as another adsorption mechanism. With the exception of PO_4~(3-) , other co-existing anions (NO_3~-, Cl~- and SO_4~(2-) ) did not evidently inhibit fluoride removal by the nanoparticles. Findings of this study demonstrate the potential utility of the nanoparticles as an effective adsorbent for fluoride removal from drinking water.
机译:开发了一种新型的具有磁性可分离性的硫酸盐掺杂的Fe_3O_4 / Al_2O_3纳米颗粒吸附剂,用于去除饮用水中的氟化物。表征了纳米级吸附剂,并评估了其在除氟方面的性能。动力学数据表明,氟化物在开始时吸附很快,随后吸附过程变慢,在20分钟内可达到近90%的吸附,而在随后的8小时内仅发生10-15%的额外去除。 Elovich模型很好地描述了氟化物的吸附等温线。通过两点Langmuir模型计算得出的该纳米吸附剂对氟化物的吸附容量在pH 7.0时为70.4 mg / g。此外,这种纳米吸附剂在4-10的相当宽的pH范围内表现良好,并且在初始pH值为10 mg / L和50 mg的情况下,在4-10的pH范围内,除氟效率分别达到90%和70%。 / L。观察到的硫酸盐氟化物的置换和吸附剂表面硫含量的降低表明,阴离子交换过程是掺杂硫酸盐的Fe_3O_4 / Al_2O_3纳米粒子吸附氟化物的重要机制。此外,纳米粒子零点电荷的pH值(pH_(PZC))的偏移和基于X射线光电子能谱(XPS)的表面分析表明,铝中心的内球氟化物络合物的形成是另一种吸附机理。 。除PO_4〜(3-)外,其他共存阴离子(NO_3〜-,Cl〜-和SO_4〜(2-))均未明显抑制纳米粒子对氟的去除。这项研究的结果表明,纳米颗粒作为一种有效的吸附剂,可以有效地去除饮用水中的氟化物。

著录项

  • 来源
    《Water Research》 |2013年第12期|4040-4049|共10页
  • 作者单位

    School of Metallurgical Science and Engineering, National Engineering Research Center for Pollution Control of Heavy Metal, Central South University, Lushan South Road 932, Changsha Hunan 410083, China;

    School of Metallurgical Science and Engineering, National Engineering Research Center for Pollution Control of Heavy Metal, Central South University, Lushan South Road 932, Changsha Hunan 410083, China;

    School of Metallurgical Science and Engineering, National Engineering Research Center for Pollution Control of Heavy Metal, Central South University, Lushan South Road 932, Changsha Hunan 410083, China,Changsha Nonferrous Metallurgy Engineering and Research Institute, Changsha Hunan 410011, China;

    School of Metallurgical Science and Engineering, National Engineering Research Center for Pollution Control of Heavy Metal, Central South University, Lushan South Road 932, Changsha Hunan 410083, China;

    School of Metallurgical Science and Engineering, National Engineering Research Center for Pollution Control of Heavy Metal, Central South University, Lushan South Road 932, Changsha Hunan 410083, China;

  • 收录信息 美国《科学引文索引》(SCI);美国《工程索引》(EI);
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

    Fluoride removal; Adsorption; Alumina-iron oxide; Sulfate;

    机译:除氟;吸附;氧化铝-氧化铁;硫酸盐;

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