4.7 Article

Optimized hybrid PVDF/graphene membranes for enhancing performance of AGMD process in water desalination

Journal

JOURNAL OF INDUSTRIAL AND ENGINEERING CHEMISTRY
Volume 99, Issue -, Pages 407-421

Publisher

ELSEVIER SCIENCE INC
DOI: 10.1016/j.jiec.2021.04.053

Keywords

PVDF membrane; Graphene; Air gap membrane distillation; Experimental design; Performance optimization

Funding

  1. Iran National Science Foundation (INSF) [97024827]

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Hybrid membranes of PVDF and electrochemically-fabricated graphene were prepared and studied for desalination. Adding graphene increased membrane hydrophobicity and permeation flux, but excessive graphene content decreased flux. Key parameters for optimal membrane preparation were determined as ethanol concentration, graphene content, and temperature.
Hybrid membranes consisting of polyvinylidene fluoride (PVDF) and electrochemically-fabricated graphene were prepared via phase inversion technique. The important parameters in manufacturing unfilled PVDF membranes including polymer concentration and content of additives were initially assessed. The effects of adding graphene to the PVDF membrane on its performance for desalination of a 3.5 wt% NaCl solution were then investigated using an air gap membrane distillation setup. The simultaneous effects of three individual parameters in membrane preparation including ethanol concentration in the coagulation bath, the coagulation bath temperature, and graphene content on membrane characteristics such as contact angle, porosity, and permeation flux were investigated. By increasing ethanol concentration in the coagulation bath and graphene content in the polymeric solution, the contact angle and thus hydrophobicity of the membrane were increased. Also, by increasing graphene content up to 0.5 wt%, the membrane permeation flux was increased while further increase in the graphene content resulted in decrease in the permeation flux. It was found that coagulation bath temperature has the highest effect on the membrane porosity. The parameters for manufacturing optimum membrane were determined by experimental design. The optimum membrane could yield a permeation flux of 3.54 kg m(-2) h(-1) and a salt rejection of 99.88%, which are in good agreement with the predicted results. The performance of optimized membrane was superior to those by PVDF and GO/PVDF membranes reported previously in literature. (C) 2021 The Korean Society of Industrial and Engineering Chemistry. Published by Elsevier B.V. All rights reserved.

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