Synthesis and performance of ultrafiltration membranes incorporated with different oxide nanomaterials: experiments and modeling

Author:

Bin Darwish Nawaf1ORCID,AlAlawi Abdulrahman1,AlRomaih Hamad1,Alotaibi Nasser2,AlEid Musaad3

Affiliation:

1. a Desalination Technologies Institute, King Abdulaziz City for Science and Technology (KACST), P. O. Box 6086, Riyadh, Saudi Arabia

2. b Chemistry Department, College of Science, Jouf University, Sakaka, Saudi Arabia

3. c Water Management & Treatment Technologies Institute, King Abdulaziz City for Science and Technology (KACST), P. O. Box 6086, Riyadh, Saudi Arabia

Abstract

Abstract In membrane filtration technology, membrane fouling is the primary obstacle to optimizing efficiency and results in a short membrane lifetime and high operating costs. By incorporating nanomaterials into the membrane synthesis process, a mixed-matrix membrane with significantly enhanced characteristics and performance may be obtained. Graphene oxide (GO), aluminum oxide (Al2O3), tin oxide (SnO2), and titanium oxide (TiO2) were incorporated into a polyethersulfone (PESU) membrane. The water permeability of the modified membranes showed improvements when compared with the pure membrane. It increased from 65 L/m2 h bar for the pristine membrane (PES-1) to 143.6, 83.68, 92.12, 75.43 L/m2 h bar for Al2O3 (PES-2), TiO2 (PES-3), SnO2 (PES-4), and GO (PES-5) membranes, respectively. It was discovered that the membrane's surface hydrophilicity was significantly and directly affected by the incorporation of nanoparticles. Fouling parameters include Rr (Reversible fouling ratio), Rir (irreversible fouling ratio), Rt (total fouling ratio), and Frr (flux recovery ratio) and were measured to determine the membrane's fouling tendency. The results showed that the membrane's propensity for fouling could be reduced when nanoparticles were incorporated into it. The experimental results are best explained by the cake layer and both standard and intermediate blocking mechanism models, as determined by the traditional single fouling models.

Publisher

IWA Publishing

Subject

Filtration and Separation,Water Science and Technology

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