4.4 Article

Investigation of UV/H2O2 pretreatment effects on humic acid fouling on polysulfone/titanium dioxideAnd polysulfone/multiwall carbon nanotubeNanocomposite ultrafiltration membranes

Journal

ENVIRONMENTAL PROGRESS & SUSTAINABLE ENERGY
Volume 36, Issue 1, Pages 27-37

Publisher

WILEY
DOI: 10.1002/ep.12430

Keywords

fouling; humic acid; advanced oxidation process; mixed matrix membrane; dynamic light scattering; water treatment

Funding

  1. TTU Center for the Management, Utilization, and Protection of Water Resources at Tennessee Technological University

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Membrane fouling is an important concern for membrane separation technology. Preparation of the feed before entering into the membrane and physicochemical modifications of membrane are both important approaches toward enhancing the permeability and separation in membrane processes. The present report combines both approaches. In terms of membrane characterization, scanning electron microscopy (SEM) images showed that the addition of titanium dioxide (TiO2) nanoparticles and multiwall carbon nanotube (MWCNT) resulted in increased pore numbers at the top surface and more interconnected pores in the porous membrane structure. The surface hydrophilicity and porosity of the PSF/TiO2 and PSF/MWCNT increased compared with pure PSF membranes. PSF/TiO2 nanocomposites showed just 10% flux decline and improved 95% flux recovery ratio (FRR%). UV/H2O2 pretreatment changed the physicochemical properties of humic acid (HA) aggregates by reducing the super-micrometer size range (>1 m) aggregates to a bimodal distribution of two submicrometer size ranges <1 m (10-100 nm and 100-1000 nm) and increased the zeta potential of HA solution due to the production of new functional groups. The oxidation pretreatment alone improved flux decline at 120 min from 21% to 80% and increased the FRR from 58% to 80% for the pure PSF. The oxidative pretreatment also improved purification for the PSF/TiO2 nanocomposite membranes. The flux decline improved from 81% to 95% with only a slight improvement on the 94% FRR increasing to about 99% FRR. The FRR in the case of PSF/MWCNT actually declined with the pretreatment. The hybrid process of UV/H2O2 pretreatment and PSF/TiO2 nanocomposite membranes exhibited optimal permeability and antifouling properties. (c) 2016 American Institute of Chemical Engineers Environ Prog, 36: 27-37, 2017

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