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三维蜂窝状结构零价铁/壳聚糖复合泡沫用于有效去除水中的无机砷。

Three-dimensional honeycomb-like structured zero-valent iron/chitosan composite foams for effective removal of inorganic arsenic in water.

机构信息

School of Physics and Materials Science, Anhui University, Hefei 230601, PR China; Key Laboratory of Materials Physics, Centre for Environmental and Energy Nanomaterials, Anhui Key Laboratory of Nanomaterials and Nanotechnology, Institute of Solid State Physics, Chinese Academy of Sciences, Hefei 230031, PR China.

Key Laboratory of Materials Physics, Centre for Environmental and Energy Nanomaterials, Anhui Key Laboratory of Nanomaterials and Nanotechnology, Institute of Solid State Physics, Chinese Academy of Sciences, Hefei 230031, PR China.

出版信息

J Colloid Interface Sci. 2016 Sep 15;478:421-9. doi: 10.1016/j.jcis.2016.06.035. Epub 2016 Jun 15.

Abstract

A facile freeze-drying method was presented to fabricate three dimensional (3D) honeycomb-like structured nanoscale zero-valent iron/chitosan composite foams (ICCFs) for effective removal of inorganic arsenic in water. It was found that freezing temperature has important influence on the formation of 3D network structure of ICCFs. The ICCFs obtained at freeze temperature of -80°C exhibits oriented porous structure with good mechanical property than that at -20°C, thus improved excellent removal capability of As(III) and As(V) up to 114.9mgg(-1) and 86.87mgg(-1), respectively. Further, the adsorption kinetics of ICCFs on As(III) and As(V) can be described by pseudo-second order model and their adsorption isotherms follow Langmuir adsorption model. The superior removal performance of ICCFs on As(III) and As(V) can be ascribed to its oriented porous structure with abundant adsorption active sites resulted from nZVI and O, N-containing functional groups in ICCFs. Importantly, it was found that the O, N-containing functional groups of chitosan in ICCFs can adequately bind with the dissolved Fe(3+) ions from oxidation of nZVI to form Fe(3+)-Chitosan complex during removal of As(III) and As(V), thus effectively avoiding the dissolved Fe(3+) ions into solution to produce secondary pollution. A possible adsorption-coupled reduction mechanism of ICCFs on As(III) and As(V) was also proposed based on the experimental results. We believe that this work would be helpful to develop low-cost and abundant chitosan-based materials as high performance adsorbents for environmental remediation applications.

摘要

一种简便的冷冻干燥法被提出用于制备三维(3D)蜂窝状纳米零价铁/壳聚糖复合泡沫(ICCFs),以有效去除水中的无机砷。研究发现,冷冻温度对 ICCFs 的 3D 网络结构的形成有重要影响。在-80°C 的冷冻温度下获得的 ICCFs 具有定向多孔结构和良好的机械性能,优于-20°C 下获得的 ICCFs,因此对 As(III)和 As(V)的去除能力分别提高到 114.9mgg(-1)和 86.87mgg(-1)。此外,ICCFs 对 As(III)和 As(V)的吸附动力学可以用拟二级动力学模型描述,其吸附等温线遵循 Langmuir 吸附模型。ICCFs 对 As(III)和 As(V)的优越去除性能可归因于其具有丰富的吸附活性位的定向多孔结构,这是由于 nZVI 和 ICCFs 中含 O、N 的官能团所致。重要的是,研究发现,ICCFs 中壳聚糖的含 O、N 官能团在去除 As(III)和 As(V)的过程中,可以充分与 nZVI 氧化产生的溶解 Fe(3+)离子结合,形成 Fe(3+)-壳聚糖络合物,从而有效地避免溶解的 Fe(3+)离子进入溶液产生二次污染。还根据实验结果提出了 ICCFs 对 As(III)和 As(V)的吸附-还原耦合机制。我们相信,这项工作将有助于开发低成本和丰富的壳聚糖基材料,作为环境修复应用的高性能吸附剂。

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