Key Laboratory of Colloid and Interface Chemistry of State Education Ministry, School of Chemistry and Chemical Engineering, Shandong University, 27 South Road of ShanDa, Jinan, Shandong 250100, P. R. China.
Soft Matter. 2020 Jul 29;16(29):6914-6923. doi: 10.1039/d0sm00756k.
Benefiting from their three-dimensional network structure and various functional groups, hydrogels have emerged as efficient adsorbents for the removal of heavy metal ions from wastewater. However, the obvious drawbacks of hydrogels such as generation of toxic secondary waste after adsorption and difficulty in their separation and collection limit their practical application in wastewater treatment. Herein, we introduced a facile strategy of combining mechanical frothing and in situ radical polymerization to prepare a floatable porous foam hydrogel, which not only efficiently removed Cu2+ from water, but also could be easily collected. After adsorption, to avoid the generation of secondary toxic waste, a sustainable strategy of turning the waste into useful materials was introduced. The waste of the Cu2+_ adsorbed hydrogel was processed using NaBH4 solution to obtain a Cu nanoparticle (Cu NP)-loaded composite hydrogel, which was further employed as a catalyst for the catalytic reduction of organic dyes. Thus, this work established a convenient and sustainable strategy for the preparation of an eco-friendly floatable foam hydrogel for the efficient removal of heavy metal ions such as Cu2+ from water and turning the generated waste into useful materials, which is a concept envisaged to be applicable to other heavy metal ion-adsorbed hydrogel systems and will efficiently avoid unwanted secondary pollution.
受益于其三维网络结构和各种官能团,水凝胶已成为从废水中去除重金属离子的有效吸附剂。然而,水凝胶的明显缺点,如吸附后产生有毒二次废物和难以分离和收集,限制了它们在废水处理中的实际应用。在此,我们介绍了一种简便的机械发泡和原位自由基聚合相结合的策略,制备了一种可浮多孔泡沫水凝胶,它不仅能有效地去除水中的 Cu2+,而且易于收集。吸附后,为避免产生二次有毒废物,引入了一种将废物转化为有用材料的可持续策略。使用 NaBH4 溶液处理吸附 Cu2+的水凝胶废物,得到负载 Cu 纳米颗粒(Cu NP)的复合水凝胶,进一步将其用作有机染料催化还原的催化剂。因此,这项工作建立了一种简便可持续的策略,用于制备一种环保型可浮泡沫水凝胶,以高效去除水中的 Cu2+等重金属离子,并将生成的废物转化为有用的材料,这一概念预计适用于其他重金属离子吸附水凝胶系统,并将有效地避免不必要的二次污染。