Blend of polyvinylpyrrolidone/thermally reduced graphene for adsorption of heavy metal ions in water

IF 1.7 Q3 MATERIALS SCIENCE, MULTIDISCIPLINARY
Diep Ngoc Le, Linh Duy Nguyen, Dong Duy Tran, Tan Le Hoang Doan, Chien Mau Dang, Tin Chanh Duc Doan
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Abstract

This paper presents the preparation of a modified polyvinylpyrrolidone (PVP)/graphene mixture and evaluates its adsorption capacity for heavy metal ions in water. Graphene with a high specific surface area of about 362 m2 g−1 was obtained through the thermal separation of graphite oxide (GO), which had been synthesised from graphite by the Hummer method. The graphene-PVP blend was prepared by dispersing the graphene into a PVP solution and then crosslinking it to prevent washout by water. This crosslinking ensured a well-dispersed and stable graphene-PVP blend. The maximum adsorption capacity of graphene-PVP for Cu2+ and Cd2+ ions was found to be 158 mg g−1 and 134 mg g−1, respectively, at pH 3 and a contact time of 30 min. The experimental results were found to be consistent with Langmuir and pseudo-second-order kinetic models. The study further reveals that the adsorption mechanism of Cu2+ and Cd2+ ions on graphene-PVP follows an ion exchange mechanism, driven by strong interactions between PVP and metal ions. The study provides an easy, low-cost, and eco-friendly method to produce highly adsorptive graphene-PVP materials.
用于吸附水中重金属离子的聚乙烯吡咯烷酮/热还原石墨烯混合物
本文介绍了改性聚乙烯吡咯烷酮(PVP)/石墨烯混合物的制备方法,并评估了其对水中重金属离子的吸附能力。石墨烯是通过悍马法从石墨中合成的氧化石墨(GO)热分离得到的,具有约 362 m2 g-1 的高比表面积。石墨烯-PVP 混合物的制备方法是将石墨烯分散到 PVP 溶液中,然后进行交联以防止水的冲刷。这种交联确保了石墨烯-PVP 混合物的良好分散性和稳定性。在 pH 值为 3 和接触时间为 30 分钟的条件下,石墨烯-PVP 对 Cu2+ 和 Cd2+ 离子的最大吸附容量分别为 158 mg g-1 和 134 mg g-1。实验结果与 Langmuir 和伪二阶动力学模型一致。研究进一步揭示了 Cu2+ 和 Cd2+ 离子在石墨烯-PVP 上的吸附机制遵循离子交换机制,由 PVP 和金属离子之间的强相互作用驱动。该研究为制备高吸附性石墨烯-PVP 材料提供了一种简便、低成本和环保的方法。
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来源期刊
Advances in Natural Sciences: Nanoscience and Nanotechnology
Advances in Natural Sciences: Nanoscience and Nanotechnology NANOSCIENCE & NANOTECHNOLOGYMATERIALS SCIE-MATERIALS SCIENCE, MULTIDISCIPLINARY
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