Zulfiqar Usama, Kostoglou Nikolaos, Thomas Andrew G, Rebholz Claus, Matthews Allan, Lewis David J
Department of Materials, University of Manchester, Oxford Road, Manchester M13 9PL, UK.
Department of Materials Science, Montanuniversität Leoben, 8700 Leoben, Austria.
Nanoscale. 2021 Sep 23;13(36):15311-15323. doi: 10.1039/d1nr03242a.
This paper reports a study involving the formation of a self-assembled polymeric monolayer on the surface of a high surface area activated carbon to engineer its affinity towards organic contaminants. A nanoporous activated carbon cloth with a surface area of ∼1220 m g and a pore volume of ∼0.42 cm g was produced by chemical impregnation, carbonisation and high-temperature CO activation of a commercially available viscose rayon cloth. The subsequent modification with a silane polymer resulted in a nanoscale self-assembled monolayer that made it selective towards organic solvents (contact angle <10°) and repellant towards water (contact angle >145°). The adsorbent showed more than 95% efficiency in the separation of various types of oil/water mixtures under neutral, basic and acidic conditions. Benefiting from inherent nanoscale features, a robust hierarchical structure and a thermally stable monolayer (∼300 °C), this nanoporous adsorbent maintained high efficiency for more than 20 cycles and separated surfactant stabilised emulsion with >92% oil removal efficiency. The adsorbent was studied extensively with a series of advanced characterisation techniques to establish the formation mechanism and performance in emulsion separation. Findings from this work provide crucial insights towards large-scale implementation of surface engineered activated carbon-based materials for a wide range of industrial separation applications.
本文报道了一项研究,该研究涉及在高比表面积活性炭表面形成自组装聚合物单分子层,以设计其对有机污染物的亲和力。通过对市售粘胶人造丝织物进行化学浸渍、碳化和高温CO活化,制备了一种比表面积约为1220 m²/g、孔体积约为0.42 cm³/g的纳米多孔活性炭布。随后用硅烷聚合物进行改性,形成了纳米级自组装单分子层,使其对有机溶剂具有选择性(接触角<10°),对水具有排斥性(接触角>145°)。该吸附剂在中性、碱性和酸性条件下对各种类型的油/水混合物的分离效率超过95%。受益于其固有的纳米级特征、坚固的分级结构和热稳定的单分子层(约300°C),这种纳米多孔吸附剂在20多个循环中保持了高效率,并且对表面活性剂稳定的乳液的分离效率超过92%。通过一系列先进的表征技术对该吸附剂进行了广泛研究,以确定其在乳液分离中的形成机制和性能。这项工作的发现为大规模应用表面工程化活性炭基材料用于广泛的工业分离应用提供了关键见解。