Literature DB >> 26114376

Morphologically Aligned Cation-Exchange Membranes by a Pulsed Electric Field for Reverse Electrodialysis.

Ju-Young Lee1, Jae-Hun Kim1, Ju-Hyuk Lee1, Seok Kim1, Seung-Hyeon Moon1.   

Abstract

A low-resistance ion-exchange membrane is essential to achieve the high-performance energy conversion or storage systems. The formation methods for low-resistance membranes are various; one of the methods is the ion channel alignment of an ion-exchange membrane under a direct current (DC) electric field. In this study, we suggest a more effective alignment method than the process with the DC electric field. First, an ion-exchange membrane was prepared under a pulsed electric field [alternating current (AC) mode] to enhance the effectiveness of the alignment. The membrane properties and the performance in reverse electrodialysis (RED) were then examined to assess the membrane resistance and ion selectivity. The results show that the membrane electrical resistance (MER) had a lower value of 0.86 Ω cm(2) for the AC membrane than 2.13 Ω cm(2) observed for the DC membrane and 4.30 Ω cm(2) observed for the pristine membrane. Furthermore, RED achieved 1.34 W/m(2) of maximum power density for the AC membrane, whereas that for the DC membrane was found to be 1.14 W/m(2) [a RED stack assembled with CMX, used as a commercial cation-exchange membrane (CEM), showed 1.07 W/m(2)]. Thereby, the novel preparation process for a remarkable low-resistance membrane with high ion selectivity was demonstrated.

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Year:  2015        PMID: 26114376     DOI: 10.1021/acs.est.5b01151

Source DB:  PubMed          Journal:  Environ Sci Technol        ISSN: 0013-936X            Impact factor:   9.028


  1 in total

Review 1.  Heat to Hydrogen by RED-Reviewing Membranes and Salts for the RED Heat Engine Concept.

Authors:  Pauline Zimmermann; Simon Birger Byremo Solberg; Önder Tekinalp; Jacob Joseph Lamb; Øivind Wilhelmsen; Liyuan Deng; Odne Stokke Burheim
Journal:  Membranes (Basel)       Date:  2021-12-30
  1 in total

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