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Eco-friendly and cost-effective superabsorbent sodium polyacrylate composites for environmental remediation

机译:环保且经济高效的超吸收性聚丙烯酸钠复合材料,可用于环境修复

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摘要

In this research, we synthesized superabsorbent polymers (SAPs) based on poly(acrylic acid) with super adsorption properties through a novel one-step cost-effective method. The SAPs’ adsorption for removal of heavy metal ions [e.g., Cu(II)] from aqueous solutions was systematically studied. The effects of pH (2.0–5.0), sodium hydroxide and water composition, contact time (0–48 h), and initial Cu(II) ion concentrations (1–500 mg dm−3) on the adsorption of Cu(II) ions were studied using atomic absorption spectroscopy. The adsorption behavior was fitted to a Langmuir isotherm and shown to follow a pseudo-second-order reaction model. The maximum adsorption capacities of Cu(II) ions were shown to be 243.91 mg g−1 for sodium polyacrylate (PAANa), which is among the highest adsorption capacities reported in the literature. The superior adsorption capacity of Cu(II) ions is attributed to the chelating ability of functional groups (e.g., –COO−) in the PAANa matrix. The recyclability of the PAANa material showed that over 98.92 % of the adsorbed copper could be recovered in a mild concentration (0.01 M) of nitric acid. Results of three consecutive adsorption–desorption cycles showed that the composites had high adsorption and desorption efficiency, implying that PAANa samples can be recycled and reused as an effective adsorbent for Cu(II) recovery.
机译:在这项研究中,我们通过一种新颖的一站式高性价比方法,以具有超强吸附性能的聚丙烯酸为基础,合成了超吸收性聚合物(SAPs)。系统研究了SAP吸附从水溶液中去除重金属离子[例如Cu(II)]的吸附能力。 pH(2.0–5.0),氢氧化钠和水的成分,接触时间(0–48小时)和初始Cu(II)离子浓度(1–500 mg dm-3)对Cu(II)吸附的影响使用原子吸收光谱法研究离子。吸附行为符合Langmuir等温线,并显示遵循伪二级反应模型。 Cu(II)离子对聚丙烯酸钠(PAANa)的最大吸附容量显示为243.91 mg g-1,这是文献中报道的最高吸附容量之一。 Cu(II)离子的优异吸附能力归因于PAANa基质中官能团(例如–COO-)的螯合能力。 PAANa材料的可回收性表明,在中等浓度(0.01M)的硝酸中可以回收98.92%以上的吸附铜。连续三个吸附-解吸循环的结果表明,该复合材料具有较高的吸附和解吸效率,这表明PAANa样品可以回收并重新用作有效的Cu(II)吸附剂。

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  • 来源
    《Journal of Materials Science》 |2015年第17期|5799-5808|共10页
  • 作者单位

    Centre for NanoScale Science Technology and Centre for Maritime Engineering Control and Imaging School of Computer Science Engineering and Mathematics Flinders University">(1);

    Centre for NanoScale Science Technology and Centre for Maritime Engineering Control and Imaging School of Computer Science Engineering and Mathematics Flinders University">(1);

    Division of Energy Environment Graduate School of Shenzhen Tsinghua University">(2);

    Centre for NanoScale Science Technology and Centre for Maritime Engineering Control and Imaging School of Computer Science Engineering and Mathematics Flinders University">(1);

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