Issue 24, 2019

Adsorption-assisted transport of water vapour in super-hydrophobic membranes filled with multilayer graphene platelets

Abstract

The effects of confinement of multilayer graphene platelets in hydrophobic microporous polymeric membranes are here examined. Intermolecular interactions between water vapour molecules and nanocomposite membranes are envisaged to originate assisted transport of water vapour in membrane distillation processes when a suitable filler-polymer ratio is reached. Mass transport coefficients are estimated under different working conditions, suggesting a strong dependence of the transport on molecular interactions. Remarkably, no thermal polarization is observed, although the filler exhibits ultrahigh thermal conductivity. In contrast, enhanced resistance to wetting as well as outstanding mechanical and chemical stability meets the basic requirements of water purification via membrane distillation. As a result, a significant improvement of the productivity–efficiency trade-off is achieved with respect to the pristine polymeric membrane when low amounts of platelets are confined in spherulitic-like PVDF networks.

Graphical abstract: Adsorption-assisted transport of water vapour in super-hydrophobic membranes filled with multilayer graphene platelets

Supplementary files

Article information

Article type
Paper
Submitted
25 Mar 2019
Accepted
22 Apr 2019
First published
23 Apr 2019

Nanoscale, 2019,11, 11521-11529

Adsorption-assisted transport of water vapour in super-hydrophobic membranes filled with multilayer graphene platelets

E. Gontarek, F. Macedonio, F. Militano, L. Giorno, M. Lieder, A. Politano, E. Drioli and A. Gugliuzza, Nanoscale, 2019, 11, 11521 DOI: 10.1039/C9NR02581B

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