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Microstructural adjustment of Ni-BaCe0.9Y0.1O3-delta cermet membrane for improved hydrogen permeation

Authors
Kim, HyejinKim, BoyoungLee, JongheunAhn, KiyongKim, Hae-RyoungYoon, Kyung JoongKim, Byung-KookCho, Young WhanLee, Hae-WeonLee, Jong-Ho
Issue Date
4월-2014
Publisher
ELSEVIER SCI LTD
Keywords
Ceramic membranes; Proton conductor; Cermets; Hydrogen permeation; High-energy milling
Citation
CERAMICS INTERNATIONAL, v.40, no.3, pp.4117 - 4126
Indexed
SCIE
SCOPUS
Journal Title
CERAMICS INTERNATIONAL
Volume
40
Number
3
Start Page
4117
End Page
4126
URI
https://scholar.korea.ac.kr/handle/2021.sw.korea/98806
DOI
10.1016/j.ceramint.2013.08.066
ISSN
0272-8842
Abstract
Dense ceramic membranes are usually hybridized with an electronically conductive metallic phase to enhance their hydrogen permeation fluxes, thereby increasing the hydrogen-production efficiency of hydrogen separation membranes. Herein, the hydrogen-separation properties of membranes fabricated from cermets containing BaCe0.9Y0.1O3-delta (BCY) as the proton-conducting ceramic phase and Ni as the electronic-conducting metal phase were investigated with respect to the compositions of the Ni-BCY mixture. Because the hydrogen permeability of a cermet membrane is seriously affected by rnicrostructural parameters such as grain size and homogeneity of the cermet mixture used to fabricate it, we tried to optimize the microstructures and compositions of the Ni-BCY cermets by controlling their fabrication conditions. A high-energy milling process was employed to fabricate fine-grained, dense membranes that exhibited high levels of mixing homogeneity. From the adjustment of composition and microstructure of Ni-BCY composites, the hydrogen permeability of Ni-BCY cermet membranes can be significantly increased so that hydrogen fluxes of similar to 0.76 cm(3)/(min cm(2)) at 800 degrees C can be achieved. (C) 2013 Elsevier Ltd and Techna Group S.r.l. All rights reserved.
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