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Utilization of gel-type polystyrene host for immobilization of nano-sized hydrated zirconium oxides: A new strategy for enhanced phosphate removal

机译:利用凝胶型聚苯乙烯宿主,用于固定纳米型水合氧化锆的固定:一种增强磷酸盐去除的新策略

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摘要

The urgent need for eutrophication control motivated the development of many novel adsorbents for enhanced phosphate polishing removal. Among these, zirconium-based nanomaterial was regarded as an effective kind because of its ability to bind phosphate specifically via inner-sphere complexation. In this study, we proposed a new strategy to improve the efficiency of zirconium oxides (HZO) nanoparticles by immobilizing them onto a gel-type anion exchange resin covalently attached with ammonium groups, denoted as HZO@N201. A previously developed macro-porous polymeric nanocomposite HZO@D201 was used for comparison. The immobilized nanoparticles in HZO@N201 were well dispersed in the gel matrix, manifesting smaller particle size and richer surface hydroxyl groups in comparison to HZO@D201. As a result of the structural merits in collective, HZO@N201 not only exhibited superior phosphate adsorptive capacity and affinity towards phosphate to HZO@D201, but also facilitate phosphate diffusion, based on isotherm, pH and kinetic tests. Mechanistic study by XPS and 31P SS-NMR substantiated the selective phosphate adsorption pathway as the formation of inner-sphere complexes by HZO@N201, which exhibited enhanced reactivity than HZO@D201. Lastly, fixed-bed runs of HZO@N201 was conducted, achieving an effective treatable volume of 2000 BV, which was 600 BV more than HZO@D201. Additional adsorption-regeneration cycle confirmed its reusability and potential for practical application. We believe the gel-type polymeric host could facilitate the formation and dispersion of smaller sized nanoparticles, exposing more surface hydroxyl groups highly accessible to phosphate. The results of this paper offer insights to a new strategy for immobilization of functional nanoparticles aiming at enhanced adsorptive removal of phosphate. (C) 2020 Elsevier Ltd. All rights reserved.
机译:迫切需要富营养化控制的促进了许多新型吸附剂的发展,用于增强磷酸盐抛光去除。其中,基于锆的纳米材料被认为是有效的,因为它能够通过内球络合具体地结合磷酸盐。在这项研究中,我们提出了一种新的策略来提高氧化锆(HZO)纳米颗粒的效率,通过将它们固定到与铵基团共价连接的凝胶型阴离子交换树脂上,表示为HZO @ N201。先前显影的宏观多孔聚合物纳米复合材料HZO @ D201用于比较。与HZO @ D201相比,HZO @ N201中的固定化纳米颗粒在凝胶基质中分散在凝胶基质中,呈较小的粒度和更丰富的表面羟基。由于集体的结构优点,HZO @ N201不仅表现出优越的磷酸盐吸附能力和对HZO @ D201的亲和力,而且还促进磷酸盐扩散,基于等温,pH和动力学试验。通过XPS和31PS-NMR的机械研究证实了选择性磷酸盐吸附途径作为HZO @ N201的内球复合物的形成,其表现出比HZO @ D201的反应性增强。最后,进行了HZO @ N201的固定床运行,实现了2000年BV的有效治疗体积,比HZO @ D201多600 BV。额外的吸附 - 再生循环确认了其可重用性和实际应用的潜力。我们认为凝胶型聚合物宿主可以促进较小尺寸的纳米颗粒的形成和分散,暴露高度可接近的磷酸盐的表面羟基。本文的结果提供了对固定功能纳米颗粒的新策略的见解,旨在增强磷酸盐的吸附去除。 (c)2020 elestvier有限公司保留所有权利。

著录项

  • 来源
    《Chemosphere》 |2021年第2期|127938.1-127938.10|共10页
  • 作者单位

    Nanjing Univ Sch Environm State Key Lab Pollut Control & Resource Reuse Nanjing 210023 Peoples R China;

    Nanjing Univ Sch Environm State Key Lab Pollut Control & Resource Reuse Nanjing 210023 Peoples R China|Nanjing Univ Res Ctr Environm Nanotechnol ReCENT Nanjing 210023 Peoples R China;

    Nanjing Univ Sch Environm State Key Lab Pollut Control & Resource Reuse Nanjing 210023 Peoples R China;

    Nanjing Univ Sch Environm State Key Lab Pollut Control & Resource Reuse Nanjing 210023 Peoples R China|Nanjing Univ Res Ctr Environm Nanotechnol ReCENT Nanjing 210023 Peoples R China;

    Nanjing Univ Sch Environm State Key Lab Pollut Control & Resource Reuse Nanjing 210023 Peoples R China|Nanjing Univ Res Ctr Environm Nanotechnol ReCENT Nanjing 210023 Peoples R China;

    Nanjing Univ Sch Environm State Key Lab Pollut Control & Resource Reuse Nanjing 210023 Peoples R China|Nanjing Univ Res Ctr Environm Nanotechnol ReCENT Nanjing 210023 Peoples R China;

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

    Phosphate; Adsorption; Gel-type polymer; Nanocomposite; Zirconium oxides;

    机译:磷酸盐;吸附;凝胶型聚合物;纳米复合材料;氧化锆;
  • 入库时间 2022-08-18 22:35:47

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