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beta-FeOOH Nanorods/Carbon Foam-Based Hierarchically Porous Monolith for Highly Effective Arsenic Removal

机译:β-FeOOH纳米棒/基于碳泡沫的分层多孔多孔整料,用于高效砷去除

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摘要

Arsenic pollution in water's has become a worldwide issue, constituting a severe hazard to whole ecosystems and public health worldwide. Accordingly, it is highly desirable to design high-performance adsorbents for arsenic decontamination. Herein, a feasible strategy is developed for in situ growth of, beta-FeOOH nanorods (NRs) on a three-dimensional (3D) carbon foam (CF) skeleton via a simple calcination process and subsequent hydrothermal treatment. The as-fabricated 3D, beta-FeOOH NRs/CF monolith can be innovatively utilized for arsenic remediation from contaminated aqueous systems, accompanied by remarkably high uptake capacity of 103.4 mg/g for arsenite and 172.9 mg/g for arsenate. The superior arsenic uptake performance can be ascribed to abundant active sites and hydroxyl functional groups available as well as efficient mass transfer associated with interconnected hierarchical porous networks. In addition, the as obtained material exhibits exceptional sorption selectivity toward arsenic over other coexisting anions at high levels, which can be ascribed to strong affinity between active sites and arsenic. More importantly, the free-standing 3D porous monolith not only makes it easy for separation and collection after treatment but also efficiently prevents the undesirable potential release of nanoparticles into aquatic environments while maintaining the outstanding properties of nanometer-scale building blocks. Furthermore, the monolith absorbent is able to be effectively regenerated and reused for five cycles with negligible decrease in arsenic removal. In view of extremely high adsorption capacities, preferable sorption selectivity, satisfactory recyclability, as well as facile separation nature, the obtained 3D beta-FeOOH NRs/CF monolith holds a great potential for arsenic decontamination in practical applications.
机译:水中的砷污染已成为全球问题,对全世界的整个生态系统和公共卫生构成严重危害。因此,非常希望为砷净化设计高性能吸附剂。在此,通过简单的煅烧过程和随后的水热处理,在三维(3D)碳泡沫(CF)骨架上的β-FeOOH纳米棒(NRS)的原位生长开发了可行的策略。 β-FeOH NRS / CF单片可以创新地利用来自污染的含水体系的砷的制造,伴随着砷酸盐的103.4mg / g的显着高吸收能力和172.9mg / g用于砷酸酯。优异的砷摄取性能可以归因于丰富的活性位点和羟基官能团,以及与互联的分层多孔网络相关的有效传质。此外,如所得材料在高水平的其他共存阴离子上表现出卓越的吸附选择性,这可以在活性位点和砷之间归因于强烈的亲和力。更重要的是,独立式3D多孔单片不仅使得处理和收集容易进行处理,而且还可以有效地防止纳米颗粒的不希望的潜在释放到水生环境中,同时保持纳米级构建块的出色特性。此外,能够有效地再生甲型吸收剂并重复使用5个循环,其砷去除可忽略不计。考虑到极高的吸附能力,优选的吸附选择性,令人满意的再循环性以及容易分离性,所获得的3Dβ-FeOOH NRS / CF整体在实际应用中具有砷净化的巨大潜力。

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  • 来源
    《ACS applied materials & interfaces》 |2017年第15期|共11页
  • 作者单位

    Chinese Acad Sci Inst Solid State Phys CAS Ctr Excellence Nanosci Anhui Key Lab Nanomat Ctr Environm &

    Energy Nanomat Key Lab Mat Phys Hefei 230031 Peoples R China;

    Chinese Acad Sci Inst Solid State Phys CAS Ctr Excellence Nanosci Anhui Key Lab Nanomat Ctr Environm &

    Energy Nanomat Key Lab Mat Phys Hefei 230031 Peoples R China;

    Chinese Acad Sci Inst Solid State Phys CAS Ctr Excellence Nanosci Anhui Key Lab Nanomat Ctr Environm &

    Energy Nanomat Key Lab Mat Phys Hefei 230031 Peoples R China;

    Chinese Acad Sci Inst Solid State Phys CAS Ctr Excellence Nanosci Anhui Key Lab Nanomat Ctr Environm &

    Energy Nanomat Key Lab Mat Phys Hefei 230031 Peoples R China;

    Chinese Acad Sci Inst Solid State Phys CAS Ctr Excellence Nanosci Anhui Key Lab Nanomat Ctr Environm &

    Energy Nanomat Key Lab Mat Phys Hefei 230031 Peoples R China;

    Chinese Acad Sci Inst Solid State Phys CAS Ctr Excellence Nanosci Anhui Key Lab Nanomat Ctr Environm &

    Energy Nanomat Key Lab Mat Phys Hefei 230031 Peoples R China;

    Chinese Acad Sci Inst Solid State Phys CAS Ctr Excellence Nanosci Anhui Key Lab Nanomat Ctr Environm &

    Energy Nanomat Key Lab Mat Phys Hefei 230031 Peoples R China;

  • 收录信息
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类 化学工业;
  • 关键词

    beta-FeOOH NRs/CF; monolith; porous; arsenic; adsorption;

    机译:Beta-FeoOH NRS / CF;雄芯;多孔;砷;吸附;
  • 入库时间 2022-08-20 16:32:33

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