Modular hydrogel selectively adsorbs phosphates and hexavalent chromium while enabling phosphate recovery

IF 9.4 1区 化学 Q1 CHEMISTRY, PHYSICAL Journal of Colloid and Interface Science Pub Date : 2024-11-03 DOI:10.1016/j.jcis.2024.11.005
Miao Su, Jiabao Hu, ZiSheng Liu, Sicheng Liu, Binsong Wang
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Abstract

Electroplating wastewater containing high concentrations of phosphates and hexavalent chromium Cr(VI) poses serious environmental pollution. Moreover, phosphorus, as a non-renewable resource, necessitates its recovery to meet sustainable development goals. To address this issue, this study used sodium alginate as the scaffold module, synthesized lanthanum carbonate in situ within a chitosan module to serve as the phosphate adsorption module, and employed polyethyleneimine (PEI) modules to enhance the adsorption capacity for Cr(VI), successfully fabricating a modular hydrogel (LC-CSP). LC-CSP exhibits a complex porous structure and surface morphology, forming an ultra-low-density fiber network with good strength and elasticity, ensuring uniform distribution and exposure of active sites. Under optimal conditions for single-component adsorption, LC-CSP achieved adsorption capacities of 232.02 mg/g for phosphates and 474.61 mg/g for Cr(VI). Additionally, LC-CSP demonstrated excellent reusability, retaining over 83 % of its performance after five cycles. In simulated electroplating wastewater experiments with various interfering substances, LC-CSP maintained high removal efficiencies (>90.72 %) for phosphates and Cr(VI). Post-experiment, enriched water after phosphate desorption was further treated to recover phosphorus resources in complex water environments. Multiple characterization techniques elucidated the adsorption mechanisms of LC-CSP: phosphate adsorption primarily involved ligand exchange, electrostatic interactions, and hydrogen bonding, while Cr(VI) adsorption included electrostatic interactions, hydrogen bonding, and reduction reactions. Finally, fixed-bed simulated wastewater adsorption experiments validated the technical potential of LC-CSP for practical electroplating wastewater management.

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模块化水凝胶可选择性地吸附磷酸盐和六价铬,同时实现磷酸盐回收。
含有高浓度磷酸盐和六价铬 Cr(VI) 的电镀废水造成了严重的环境污染。此外,磷作为一种不可再生资源,有必要对其进行回收,以实现可持续发展目标。针对这一问题,本研究采用海藻酸钠作为支架模块,在壳聚糖模块中原位合成碳酸镧作为磷酸盐吸附模块,并采用聚乙烯亚胺(PEI)模块增强对六价铬的吸附能力,成功制备了一种模块化水凝胶(LC-CSP)。LC-CSP 具有复杂的多孔结构和表面形态,形成了具有良好强度和弹性的超低密度纤维网,确保了活性位点的均匀分布和暴露。在单组分吸附的最佳条件下,LC-CSP 对磷酸盐的吸附容量为 232.02 mg/g,对六价铬的吸附容量为 474.61 mg/g。此外,LC-CSP 还具有极佳的重复利用率,经过五个循环后,其性能保持率超过 83%。在含有各种干扰物质的模拟电镀废水实验中,LC-CSP 对磷酸盐和六(七)铬保持了较高的去除率(>90.72%)。实验后,对磷酸盐解吸后的富集水进行了进一步处理,以回收复杂水环境中的磷资源。多种表征技术阐明了 LC-CSP 的吸附机理:磷酸盐的吸附主要涉及配体交换、静电作用和氢键,而六价铬的吸附则包括静电作用、氢键和还原反应。最后,固定床模拟废水吸附实验验证了 LC-CSP 在实际电镀废水处理中的技术潜力。
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来源期刊
CiteScore
16.10
自引率
7.10%
发文量
2568
审稿时长
2 months
期刊介绍: The Journal of Colloid and Interface Science publishes original research findings on the fundamental principles of colloid and interface science, as well as innovative applications in various fields. The criteria for publication include impact, quality, novelty, and originality. Emphasis: The journal emphasizes fundamental scientific innovation within the following categories: A.Colloidal Materials and Nanomaterials B.Soft Colloidal and Self-Assembly Systems C.Adsorption, Catalysis, and Electrochemistry D.Interfacial Processes, Capillarity, and Wetting E.Biomaterials and Nanomedicine F.Energy Conversion and Storage, and Environmental Technologies
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