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Efficient and effective removal of emerging contaminants through the parallel coupling of rapid adsorption and photocatalytic degradation: A case study of fluoroquinolones

机译:通过快速吸附和光催化降解的平行耦合有效和有效地去除新兴污染物:氟喹啉的案例研究

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摘要

The development of efficient, effective, and large-scale treatment methods to address high-risk emerging contaminants (ECs) is a growing challenge in environmental remediation. Herein, a novel parallel coupling strategy of adsorption separation and photodegradation regeneration (parallel ASPR) is proposed; subsequently, an adsorptive photocatalyst (Zn-doped BiOI) is designed to demonstrate how to effectively eliminate fluoroquinolones (FQs) from water with the proposed ASPR scheme. Compared with pure BiOI, the addition of Zn2+ during synthesis has a significant influence on the morphology and structure of the products, resulting in Zn-doped BiOI samples with up to 5 times the specific surface area, 32 times the adsorption capacity, and 20 times the photocurrent intensity. The optimized Zn-doped BiOI sample has an excellent adsorption efficiency for FQs with a removal rate that exceeds 95% after 5 min of adsorption for all 6 tested FQ antibiotics. Then the adsorbed contaminants can be effectively degraded during the later visible-light irradiation process, and the adsorbent can be regenerated synchronously, showing excellent ASPR cycling performances. The mechanisms of rapid adsorption and photocatalysis were explored via material characterizations, adsorption models, density functional theory calculations, and photogenerated species analyses. The results reveal that the enhanced adsorption of Zn-doped BiOI for FQs is due to its high specific surface area, coordination-based chemical adsorption, and surface electrostatic attraction, while its superior visible-light photodegradation performance is mainly ascribed to its strong redox ability, abundant surface oxygen vacancies, and enhanced photogenerated carrier separation efficiency.
机译:高效,有效和大规模治疗方法的发展,以解决高风险的新兴污染物(ECS)是环境修复中日益严重的挑战。在此,提出了一种吸附分离和光降解再生(并联ASP)的新型平行偶联策略;随后,设计了一种吸附光催化剂(Zn-Doped BioI),以证明如何用所提出的ASPR方案有效地从水中消除氟喹啉酮(FQS)。与纯BIOI相比,合成过程中的Zn2 +对产品的形态和结构产生了显着影响,导致Zn掺杂的生物样本,比特定表面积高达5倍,吸附容量32倍,和20倍光电流强度。优化的Zn掺杂的BioI样品具有优异的吸附效率,对于所有6个测试的FQ抗生素的吸附5分钟后,可去除率超过95%。然后在较后的可见光照射过程中可以有效地降解吸附的污染物,并且可以同步再生吸附剂,显示出优异的ASPR循环性能。通过材料表征,吸附模型,密度官能理论计算和光生物种分析探索了快速吸附和光催化的机制。结果表明,增强Zn掺杂的FQS的吸附是由于其高比表面积,配位的化学吸附和表面静电吸引力,而其优越的可见光光降解性能主要归因于其强氧化还原能力,丰富的表面氧气空位,增强的光生载流子分离效率。

著录项

  • 来源
    《Chemosphere》 |2021年第2期|130770.1-130770.10|共10页
  • 作者单位

    South China Normal Univ Sch Chem MOE Key Lab Theoret Chem Environm Guangzhou 510006 Peoples R China;

    South China Normal Univ Sch Chem MOE Key Lab Theoret Chem Environm Guangzhou 510006 Peoples R China;

    Henan Polytech Inst Dept Environm Engn Nanyang 473009 Peoples R China;

    South China Normal Univ Sch Chem MOE Key Lab Theoret Chem Environm Guangzhou 510006 Peoples R China;

    South China Normal Univ Sch Chem MOE Key Lab Theoret Chem Environm Guangzhou 510006 Peoples R China;

    South China Normal Univ Sch Chem MOE Key Lab Theoret Chem Environm Guangzhou 510006 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

    Emerging contaminants; Fluoroquinolones; Parallel coupling; Adsorption; Photocatalysis; Regeneration;

    机译:新兴污染物;氟喹诺酮类;平行偶联;吸附;光催化;再生;

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