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Nanocrack-regulated self-humidifying membranes

Authors :
Park, Chi Hoon
Lee, So Young
Hwang, Doo Sung
Shin, Dong Won
Cho, Doo Hee
Lee, Kang Hyuck
Kim, Tae-Woo
Kim, Tae-Wuk
Lee, Mokwon
Kim, Deok-Soo
Doherty, Cara M.
Thornton, Aaron W.
Hill, Anita J.
Guiver, Michael D.
Lee, Young Moo
Source :
Nature. April 28, 2016, p480, 16 p.
Publication Year :
2016

Abstract

The regulation of water content in polymeric membranes is important in a number of applications, such as reverse electrodialysis and proton-exchange fuel-cell membranes. External thermal and water management systems add both mass and size to systems, and so intrinsic mechanisms of retaining water and maintaining ionic transport (1-3) in such membranes are particularly important for applications where small system size is important. For example, in proton-exchange membrane fuel cells, where water retention in the membrane is crucial for efficient transport of hydrated ions (1,4-7), by operating the cells at higher temperatures without external humidification, the membrane is self-humidified with water generated by electrochemical reactions (5,8). Here we report an alternative solution that does not rely on external regulation of water supply or high temperatures. Water content in hydrocarbon polymer membranes is regulated through nanometre-scale cracks ('nanocracks') in a hydrophobic surface coating. These cracks work as nanoscale valves to retard water desorption and to maintain ion conductivity in the membrane on dehumidification. Hydrocarbon fuel-cell membranes with surface nanocrack coatings operated at intermediate temperatures show improved electrochemical performance, and coated reverse-electrodialysis membranes show enhanced ionic selectivity with low bulk resistance.<br />Ion-exchange membranes are used in a wide range of applications for separations, energy conversion and energy storage systems, where selective barrier properties are essential for high performance in membrane-integrated systems. [...]

Details

Language :
English
ISSN :
00280836
Database :
Gale General OneFile
Journal :
Nature
Publication Type :
Academic Journal
Accession number :
edsgcl.451000329