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Sugar Cane-Converted Graphene-like Material for the Superhigh Adsorption of Organic Pollutants from Water via Coassembly Mechanisms

机译:甘蔗转化石墨烯样材料通过共组装机制超高吸附水中的有机污染物

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摘要

A sugar cane-converted graphene-like material (FZS900) was fabricated by carbonization and activation. The material exhibited abundant micropores, water-stable turbostratic single-layer graphene nanosheets, and a high BET-N2 surface area (2280 m2 g−1). The adsorption capacities of FZS900 toward naphthalene, phenanthrene, and 1-naphthol were 615.8, 431.2, and 2040 mg g−1, respectively, which are much higher than those of previously reported materials. The nonpolar aromatic molecules induced the turbostratic graphene nanosheets to agglomerate in an orderly manner, forming 2–11 graphene layer nanoloops, while polar aromatic compounds induced high dispersion or aggregation of the graphene nanosheets. This phase conversion of the nanosized materials after sorption occurred through coassembly of the aromatic molecules and the single-layer graphene nanosheets via large-area π-π interactions. An adsorption-induced partition mechanism was further proposed to explain the nanosize effect and nanoscale sorption sites observed. This study indicates that commonly available biomass can be converted to graphene-like material with superhigh sorption ability in order to remove pollutants from the environment via nanosize effects and a coassembly mechanism.
机译:通过碳化和活化来制备甘蔗转化的类石墨烯材料(FZS900)。该材料显示出丰富的微孔,水稳固的涡轮层单层石墨烯纳米片和高BET-N2表面积(2280 m 2 g -1 )。 FZS900对萘,菲和1-萘酚的吸附容量分别为615.8、431.2和2040 mg gssup-1 -1 ,远高于以前报道的材料。非极性芳族分子诱导涡轮层状石墨烯纳米片有序地聚集,形成2-11个石墨烯层纳米环,而极性芳族化合物则诱导石墨烯纳米片高度分散或聚集。吸附后纳米级材料的这种相变是通过芳族分子和单层石墨烯纳米片通过大面积π-π相互作用的共组装而发生的。进一步提出了一种吸附诱导的分配机理来解释所观察到的纳米尺寸效应和纳米级吸附位点。这项研究表明,常用的生物质可以转化为具有超高吸附能力的石墨烯状材料,以便通过纳米效应和协同作用机制从环境中去除污染物。

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