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Published on: May 1, 2020
One-Step Heat-Induced Surface Hydrophobization of Cellulosic Membrane by APTES for Oil-Water Emulsion Separation
Naji Majoudi1, Brahim Mazian2, Yuri Ferreira da Silva2
1College of Chemical Sciences and Engineering (CCSE), Department of Materials Science, Energy and Nano-Engineering (MSN), Mohammed VI Polytechnic University (UM6P), Benguerir 43150, Morocco.
None:
Widespread discharge of oily wastewater from industrial processes, combined with accidental oil spills, poses a significant challenge to the environment and human health. Hence, the efficient separation of oil/water mixtures is a pressing issue for sustainable development. Hydrophobic/oleophilic materials based on cellulose fibers modified with silanes show increasing interest for the selective separation of oil and water, but it remains difficult to achieve simple processing while ensuring stability, durability, environmental friendliness, and low cost. Here, a hydrophobic membrane was produced via a simple one-step modification by immersing the paper substrate (UNPr) in hydrolyzed 3-aminopropyltriethoxysilane (APTES). Heat treatment at 120 °C promoted interfacial interactions between the NH2-NH2 and NH2-OH groups via conformational rearrangements that oriented the -NH2 groups toward the fiber surfaces (inward), resulting in a transition from hydrophilic to hydrophobic surfaces. This modified paper showed a water contact angle (WCA) of over 134° and oil spread immediately with an oil contact angle (OCA) of ∼0°; moreover, the average pore volume of the membrane was 246.75 ± 469.3 μm3, which improved its selectivity and enabled efficient separation of even small water droplets.

