论文标题

通过还原石墨烯氧化石墨烯高效和选择性提取黄金

Highly Efficient and Selective Extraction of Gold by Reduced Graphene Oxide

论文作者

Li, Fei, Zhu, Jiuyi, Sun, Pengzhan, Zhang, Mingrui, Li, Zhenqing, Xu, Dingxin, Gong, Xinyu, Zou, Xiaolong, Geim, A. K., Su, Yang, Cheng, Hui-Ming

论文摘要

能够从复杂来源中提取黄金的材料,尤其是具有高效率的电子废物(电子废物)才能用于黄金资源可持续性和有效的电子废物回收。但是,在广泛的复杂共存元素中,获得高萃取能力以及对黄金的精确选择性的高提取能力仍然具有挑战性。在这里,我们报告了氧化石墨烯(RGO)材料的降低,该材料具有超高提取能力的痕量黄金(1,850 mg/g和1,180 mg/g至10 ppm和1 ppm Gold)。优秀的黄金提取行为被解释到石墨烯区域和RGO的氧化区域。石墨烯区域自发地将金离子降低到金属黄金,氧化区提供了良好的分散性,因此可以实现石墨烯面积的有效吸附和黄金离子。 RGO对金离子也很高。通过控制RGO氧化区域上官能团的质子化过程,它显示出一个独家的黄金提取,而没有吸附在电子废物中看到的14个共存元素。这些发现在高效,连续的金循环中进一步利用,从电子废物具有良好的可伸缩性和经济可行性,这是通过使用基于RGO膜的流通流过程从电子废物中提取黄金来体现的。

Materials that are capable of extracting gold from complex sources, especially electronic waste (e-waste) with high efficiency are needed for gold resource sustainability and effective e-waste recycling. However, it remains challenging to achieve high extraction capacity to trace amount of gold, and precise selectivity to gold over a wide range of complex co-existing elements. Here we report a reduced graphene oxide (rGO) material that has an ultrahigh extraction capacity for trace amounts of gold (1,850 mg/g and 1,180 mg/g to 10 ppm and 1 ppm gold). The excellent gold extraction behavior is accounted to the graphene areas and oxidized regions of rGO. The graphene areas spontaneously reduce gold ions to metallic gold, and the oxidized regions provide a good dispersibility so that efficient adsorption and reduction of gold ions by the graphene area can be realized. The rGO is also highly selective to gold ions. By controlling the protonation process of the functional groups on the oxidized regions of rGO, it shows an exclusive gold extraction without adsorption of 14 co-existing elements seen in e-waste. These discoveries are further exploited in highly efficient, continuous gold recycling from e-waste with good scalability and economic viability, as exemplified by extracting gold from e-waste using a rGO membrane based flow-through process.

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