High-Flux Steady-State Demulsification of Oil-In-Water Emulsions by Superhydrophilic-Oleophobic Copper Foams with Ultra-Small Pores Under Pressure.

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School of Chemistry and Chemical Engineering, Guangdong Provincial Key Lab of Green Chemical Product Technology, South China University of Technology, Guangzhou, 510640, P. R. China.

Published: December 2024

AI Article Synopsis

  • 3D superwetting materials face challenges in oil-in-water emulsion separation due to slow oil discharge, leading to decreased efficiency.
  • This study introduces a modified copper foam with nanofibers and carbon nanotubes that achieves a high and steady demulsification flux of over 57,000 L/m²h while maintaining over 97.5% efficiency.
  • The process is enhanced by the use of a superhydrophilic copper mesh for quick separation of oil-water mixtures, indicating strong industrial application potential.

Article Abstract

3D superwetting materials struggle to maintain high-flux steady-state demulsification for oil-in-water emulsions because the accumulated oil within the material is difficult to discharge rapidly. The water flow shear force can swiftly remove the oil from the anti-fouling surface. In this study, by introducing nanofibers and carbon nanotubes and chemical modification, a superhydrophilic-oleophobic copper foam with pores of several micrometers is prepared, which can achieve a continuous demulsification process with steady-state flux over 57000 L m h for oil-in-water emulsions and rapid hydraulic-driven oil release under an additional pressure of 5 kPa. Thanks to the ultra-small pores of the copper foam, the steady-state demulsification efficiency can be still maintained at over 97.5%. During the demulsification process, the accumulation of oil and surfactants within the copper foam can be maintained at low levels, achieving dynamic equilibrium. With the aid of second-stage superhydrophilic copper mesh, the demulsified oil-water mixtures can be rapidly separated. This high-flux, steady-state, and efficient demulsification process shows great potential for industrial applications.

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Source
http://dx.doi.org/10.1002/smll.202407798DOI Listing

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