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Sulfonated polyethersulfone based cation exchange membranes for reverse electrodialysis under high salinity gradients

Avci, Ahmet H. LU ; Rijnaarts, Timon ; Fontananova, Enrica ; Di Profio, Gianluca ; Vankelecom, Ivo F.V. ; De Vos, Wiebe M. and Curcio, Efrem (2020) In Journal of Membrane Science 595.
Abstract

Salinity Gradient Power - Reverse Electrodialysis (SGP-RED) is a promising membrane-based technology to harvest the energy of mixing from solutions of different ionic concentration. Unfortunately, currently available commercial ion exchange membranes – being not specifically designed for RED – are far from satisfying the requirements of this operation, especially when operated with hyper-concentrated brines. In this work, novel sulfonated polyethersulfone (sPES) cation exchange membranes (CEM) were prepared by phase inversion method and tested under high salinity gradients. Use of 5 M NaCl electrolyte for immersion precipitation coagulation bath facilitated the self-standing membrane formation as a result of the electrostatic... (More)

Salinity Gradient Power - Reverse Electrodialysis (SGP-RED) is a promising membrane-based technology to harvest the energy of mixing from solutions of different ionic concentration. Unfortunately, currently available commercial ion exchange membranes – being not specifically designed for RED – are far from satisfying the requirements of this operation, especially when operated with hyper-concentrated brines. In this work, novel sulfonated polyethersulfone (sPES) cation exchange membranes (CEM) were prepared by phase inversion method and tested under high salinity gradients. Use of 5 M NaCl electrolyte for immersion precipitation coagulation bath facilitated the self-standing membrane formation as a result of the electrostatic interaction between the fixed charged groups and electrolyte solution. Microscopy results revealed that dense or asymmetric membranes with non-connected pores were formed by solvent evaporation or immersion precipitation, respectively. The membranes were characterized for ion exchange capacity, water uptake, charge density and thickness, and further studied by electrochemical impedance spectroscopy. The obtained properties of the newly developed membranes were subsequently compared to those of commercial CMX (Neosepta, Japan) and Fuji-CEM-Type 1 (Fujifilm, The Netherlands) membranes. The asymmetric membranes resulted in a very low resistance especially for high ionic gradients but relatively low permselectivity, while dense membranes still had a low resistance compared to commercial membranes and exhibited high permselectivity. Interestingly, in terms of power density, lab-made membranes outperformed the commercial benchmarks when tested for RED applications with brackish water (0.1 M NaCl)/hypersaline brine (4 M NaCl) feeds; power density of CMX and Fuji-CEM-Type 1 were 3.23 and 3.77 W/m2, respectively, while power density of asymmetric and dense sPES membranes were 3.64 and 3.92 W/m2, respectively.

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author
; ; ; ; ; and
publishing date
type
Contribution to journal
publication status
published
subject
keywords
Cation exchange membrane, Electrochemical impedance spectroscopy, Reverse electrodialysis, Salinity gradient power, Sulfonated polyethersulfone
in
Journal of Membrane Science
volume
595
article number
117585
pages
10 pages
publisher
Elsevier
external identifiers
  • scopus:85074338976
ISSN
0376-7388
DOI
10.1016/j.memsci.2019.117585
language
English
LU publication?
no
additional info
Publisher Copyright: © 2019
id
8af1e53d-2b3f-4c5c-ab77-d4b1cf0af1f6
date added to LUP
2022-05-13 10:48:39
date last changed
2022-05-16 14:24:08
@article{8af1e53d-2b3f-4c5c-ab77-d4b1cf0af1f6,
  abstract     = {{<p>Salinity Gradient Power - Reverse Electrodialysis (SGP-RED) is a promising membrane-based technology to harvest the energy of mixing from solutions of different ionic concentration. Unfortunately, currently available commercial ion exchange membranes – being not specifically designed for RED – are far from satisfying the requirements of this operation, especially when operated with hyper-concentrated brines. In this work, novel sulfonated polyethersulfone (sPES) cation exchange membranes (CEM) were prepared by phase inversion method and tested under high salinity gradients. Use of 5 M NaCl electrolyte for immersion precipitation coagulation bath facilitated the self-standing membrane formation as a result of the electrostatic interaction between the fixed charged groups and electrolyte solution. Microscopy results revealed that dense or asymmetric membranes with non-connected pores were formed by solvent evaporation or immersion precipitation, respectively. The membranes were characterized for ion exchange capacity, water uptake, charge density and thickness, and further studied by electrochemical impedance spectroscopy. The obtained properties of the newly developed membranes were subsequently compared to those of commercial CMX (Neosepta, Japan) and Fuji-CEM-Type 1 (Fujifilm, The Netherlands) membranes. The asymmetric membranes resulted in a very low resistance especially for high ionic gradients but relatively low permselectivity, while dense membranes still had a low resistance compared to commercial membranes and exhibited high permselectivity. Interestingly, in terms of power density, lab-made membranes outperformed the commercial benchmarks when tested for RED applications with brackish water (0.1 M NaCl)/hypersaline brine (4 M NaCl) feeds; power density of CMX and Fuji-CEM-Type 1 were 3.23 and 3.77 W/m<sup>2</sup>, respectively, while power density of asymmetric and dense sPES membranes were 3.64 and 3.92 W/m<sup>2</sup>, respectively.</p>}},
  author       = {{Avci, Ahmet H. and Rijnaarts, Timon and Fontananova, Enrica and Di Profio, Gianluca and Vankelecom, Ivo F.V. and De Vos, Wiebe M. and Curcio, Efrem}},
  issn         = {{0376-7388}},
  keywords     = {{Cation exchange membrane; Electrochemical impedance spectroscopy; Reverse electrodialysis; Salinity gradient power; Sulfonated polyethersulfone}},
  language     = {{eng}},
  month        = {{02}},
  publisher    = {{Elsevier}},
  series       = {{Journal of Membrane Science}},
  title        = {{Sulfonated polyethersulfone based cation exchange membranes for reverse electrodialysis under high salinity gradients}},
  url          = {{http://dx.doi.org/10.1016/j.memsci.2019.117585}},
  doi          = {{10.1016/j.memsci.2019.117585}},
  volume       = {{595}},
  year         = {{2020}},
}