Tianjin Key Laboratory of Clean Energy and Pollution Control, School of Energy and Environmental Engineering, Hebei University of Technology, Tianjin 300401, China.
Tianjin Key Laboratory of Clean Energy and Pollution Control, School of Energy and Environmental Engineering, Hebei University of Technology, Tianjin 300401, China; School of Civil and Transportation Engineering, Hebei University of Technology, Tianjin 300401, China; Tianjin Eco-City Environmental Protection Limited Company, Tianjin 300467, China.
Sci Total Environ. 2021 Aug 1;780:146517. doi: 10.1016/j.scitotenv.2021.146517. Epub 2021 Mar 17.
Leakage accidents occurring during oil production and transportation are currently one of the most serious environmental problems worldwide. Developing efficient and environmentally friendly oil-water separation methods is the key to solve this problem. In this work, a facile method to fabricate a high-performance oil absorbent through the loading of ball-milled biochar (BMBC) and octadecylamine on the skeleton of melamine foam (MF) is reported. The resulting ball-milled biochar-based MF (BMBC@MF) displayed a complex three-dimensional porous structure. The BM biochar on the surface of BMBC@MF forms nano/μm-scale folds, which reduced the surface energy of BMBC@MF after grafted octadecylamine. These structures resulted in the conversion of the hydrophilic surface of MF to hydrophobic surface. These characteristics made the modified foam an excellent oil absorbent with a high oil absorption capacity (43-155 times its own weight) and extraordinary recyclability. Furthermore, the BMBC@MF could maintain high hydrophobicity and adsorption stability in a wide pH range (from 1 to 11). More importantly, BM biochar is a cheap and readily available material to make BMBC@MF possible for large-scale production. Therefore, this work provides an effective way for low-cost, environmentally friendly, and large-scale production of superhydrophobic adsorbents for oil-water separation.
在石油生产和运输过程中发生的泄漏事故目前是全球最严重的环境问题之一。开发高效、环保的油水分离方法是解决这一问题的关键。在这项工作中,报道了一种通过将球磨生物炭(BMBC)和十八胺负载在三聚氰胺泡沫(MF)骨架上制备高性能吸油剂的简便方法。所得的基于球磨生物炭的 MF(BMBC@MF)呈现出复杂的三维多孔结构。BMBC@MF 表面的 BM 生物炭形成纳米/微米级褶皱,接枝十八胺后降低了 BMBC@MF 的表面能。这些结构导致 MF 的亲水表面转化为疏水表面。这些特性使改性泡沫成为一种具有高吸油能力(自身重量的 43-155 倍)和非凡可重复使用性的优异吸油剂。此外,BMBC@MF 在很宽的 pH 范围内(从 1 到 11)都能保持高疏水性和吸附稳定性。更重要的是,BM 生物炭是一种廉价且易得的材料,使得 BMBC@MF 有可能进行大规模生产。因此,这项工作为低成本、环保和大规模生产用于油水分离的超疏水吸附剂提供了一种有效的方法。