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优化氧化石墨烯泡沫,提高其从水中去除汞的性能和选择性。

Optimized graphene oxide foam with enhanced performance and high selectivity for mercury removal from water.

机构信息

CESAM & Department of Chemistry, University of Aveiro, 3810-193 Aveiro, Portugal.

TEMA-NRD, Mechanical Engineering Department, University of Aveiro, 3810-193 Aveiro, Portugal; Aveiro Institute of Nanotechnology, AIN, University of Aveiro, 3810-193 Aveiro, Portugal.

出版信息

J Hazard Mater. 2016 Jan 15;301:453-61. doi: 10.1016/j.jhazmat.2015.09.028. Epub 2015 Sep 15.

Abstract

This work explores the preparation of three-dimensional graphene oxide macroscopic structures, shaped by self-assembling single graphene oxide (3DGO) sheets with control of its surface chemistry by combining with nitrogen functional groups (3DGON), or with nitrogen and sulphur functional groups (3DGOSN), and their application in the removal of mercury (Hg(II)) from aqueous solutions. The chemical structure of the materials was assessed by using different characterization techniques: SEM, XPS and BET. Adsorption studies conducted in Hg(II) contaminated ultra-pure water reveal the enhanced ability of 3DGON for the adsorption of this metal, when compared to the other GO foams. A small dose of 3DGON (10 mg L(-1)) allows to remove up to 96% of Hg(II) after 24 h of contact time, leading to a residual concentration in solution close to the guideline value for drinking water (1 μg L(-1)). The ability of this material to adsorb Hg (II) was evaluated relatively to different experimental parameters such as pH, sorbent dose, time and effect on different competing metal ions. Real application was also evaluated by testing its performance in two different natural matrices, river and sea water, with very promising results.

摘要

这项工作探索了三维氧化石墨烯宏观结构的制备方法,通过自组装单氧化石墨烯(3DGO)片来实现,通过与氮官能团(3DGON)或氮和硫官能团(3DGOSN)结合来控制其表面化学性质。材料的化学结构通过使用不同的表征技术进行评估:SEM、XPS 和 BET。在含汞(Hg(II))的超纯水中进行的吸附研究表明,与其他 GO 泡沫相比,3DGON 对这种金属的吸附能力更强。在 24 小时的接触时间后,小剂量的 3DGON(10mg/L(-1)))可以去除高达 96%的 Hg(II),导致溶液中的残留浓度接近饮用水的指导值(1μg/L(-1))。通过评估不同的实验参数,如 pH 值、吸附剂剂量、时间以及对不同竞争金属离子的影响,评估了这种材料对 Hg(II)的吸附能力。还通过在两种不同的天然基质(河水和海水)中测试其性能来评估实际应用,结果非常有前景。

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