A biologically inspired hydrophobic membrane for application in pervaporation

Jullok, N.;Martínez, R.;Wouters, C.;Luis Alconero, Patricia;Van Der Bruggen, B.;et.al.
(2013) Langmuir : the A C S journal of surfaces and colloids — Vol. 29, n° 5, p. 1510-1516 (2013)

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Authors
  • Jullok, N.KU Leuven, Belgium - Universiti Malaysia Perlis, Malaysia
    Author
  • Martínez, R.University of Burgos, Spain
    Author
  • Wouters, C.KU Leuven
    Author
  • Van Der Bruggen, B.KU Leuven
    Author
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Abstract
An artificial polydimethylsiloxane/polyphenylsulfone (PDMS/PPSU) membrane, which emulates the hydrophobic behavior of natural membranes, was synthesized. Hydrophobicity was achieved by coating the membrane surface sublayer using conventional silicon material, which imitates the character of epicuticular wax (EW) of Prunus laurocerasus L. leaves. It was then applied as a separation medium in pervaporation (PV) of diluted mixtures of ethyl acetate and aroma compounds. The membrane's biomimetic characteristics were evaluated using surface morphology analyses, that is, Fourier transform infrared (FTIR), water contact angle measurements, and SEM imaging. A comparison of properties of the membranes synthesized in this work against selected hydrophobic plant leaves indicated a good agreement. PV using these biologically inspired artificial membranes demonstrated preference for the permeation of ethyl acetate. Besides intrinsic characteristics, it was also observed that the chemical potential is highly influential in activating sorption, diffusion, and desorption of a specific compound. © 2013 American Chemical Society.
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Citations

Jullok, N., Martínez, R., Wouters, C., Luis Alconero, P., Sanz, M. T., & Van Der Bruggen, B. (2013). A biologically inspired hydrophobic membrane for application in pervaporation. Langmuir : the A C S journal of surfaces and colloids, 29(5), 1510-1516. https://doi.org/10.1021/la3050253 (Original work published 2013)