Layered Double Hydroxide Functionalized Textile for Effective Oil/Water Separation and Selective Oil Adsorption
Top Cited Papers
- 9 December 2014
- journal article
- research article
- Published by American Chemical Society (ACS) in ACS Applied Materials & Interfaces
- Vol. 7 (1), 791-800
- https://doi.org/10.1021/am507238y
Abstract
The removal of oil and organic pollutants from water is highly desired due to frequent oil spill accidents, as well as the increase of industrial oily wastewater. Here, superhydrophobic and superoleophilic textile has been successfully prepared for the application of effective oil/water separation and selective oil adsorption. This textile was fabricated by functionalizing the commercial textile with layered double hydroxide (LDH) microcrystals and low surface energy molecules. The LDH microcrystals were immobilized on the microfibers of the textile through an in situ growth method, and they formed a nestlike microstructure. The combination of the hierarchical structure and the low surface energy molecules made the textile superhydrophobic and superoleophilic. Further experiments demonstrated that the as-prepared textile not only can be applied as effective membrane materials for the separation of oil and water mixtures with high separation efficiency (>97%), but also can be used as a bag for the selective oil adsorption from water. Thus, such superhydrophobic and superoleophilic textile is a very promising material for the application of oil spill cleanup and industrial oily wastewater treatment.Keywords
Funding Information
- National Natural Science Foundation of China (21175076, 21375072, 21405089)
- Research Foundation for Distinguished Scholars, Qingdao Agricultural University (631311, 631404)
- Scientific Research Award Fund for Excellent Middle-aged and Young Scientists of Shandong Province (BS2013DX025)
This publication has 67 references indexed in Scilit:
- Methodology for Robust Superhydrophobic Fabrics and Sponges from In Situ Growth of Transition Metal/Metal Oxide Nanocrystals with Thiol Modification and Their Applications in Oil/Water SeparationACS Applied Materials & Interfaces, 2013
- Switchable Adhesion on Liquid/Solid InterfacesAdvanced Functional Materials, 2010
- Extent and frequency of vessel oil spills in US marine protected areasMarine Pollution Bulletin, 2010
- Facile Approach in Fabricating Superhydrophobic and Superoleophilic Surface for Water and Oil Mixture SeparationACS Applied Materials & Interfaces, 2009
- Separating small amount of water and hydrophobic solvents by novel superhydrophobic copper meshesApplied Surface Science, 2008
- Superwetting nanowire membranes for selective absorptionNature Nanotechnology, 2008
- Design and Creation of Superwetting/Antiwetting SurfacesAdvanced Materials, 2006
- Sorption and Recovery of Heavy Oils by Using Exfoliated GraphiteSpill Science & Technology Bulletin, 2003
- Wettability of porous surfacesTransactions of the Faraday Society, 1944
- RESISTANCE OF SOLID SURFACES TO WETTING BY WATERIndustrial & Engineering Chemistry, 1936