Design of Asymmetric Multilayer Membranes Based on Mixed Ionic-Electronic Conducting Composites Supported on Ni-Al Foam Substrate Full article
Conference |
9th International Conference on Catalysis in Membrane Reactors 28 Jun - 2 Jul 2009 , Lyon |
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Journal |
Catalysis Today
ISSN: 0920-5861 , E-ISSN: 1873-4308 |
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Output data | Year: 2010, Volume: 156, Number: 3-4, Pages: 173-180 Pages count : 8 DOI: 10.1016/j.cattod.2010.07.030 | ||||||
Tags | Alloy foam substrate, CH4, Fluorites, Mixed ionic-electronic conducting nanocomposites, Oxygen separation, Oxygen-conducting supported membranes, Perovskites, Syngas | ||||||
Authors |
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Affiliations |
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Funding (5)
1 | The Ministry of Education and Science of the Russian Federation | 02.740.11.0852 |
2 | Президиум РАН | 57 |
3 | Russian Foundation for Basic Research | 09-03-12317 |
4 | International Science and Technology Center | 3234 |
5 | European Commission | 228953 FP7-NMP-2008-LARGE-2 OCMOL |
Abstract:
This paper presents the results of research aimed at design of multilayer asymmetric oxygen separation membranes comprised of functionally graded by composition and porosity nanocomposite layers with mixed ionic–electronic conductivity (MIEC) and a high oxygen mobility supported on the compressed Ni–Al alloy foam substrate. Complex oxides with fluorite-like structure (Ce0.9Gd0.1O2−δ), perovskite-like structure La0.8Sr0.2Fe1−xNixO3−δ (x = 0.3–0.4) and spinel structure MnFe2O4 synthesized via polymerized precursors (Pechini) route were used for the preparation of these nanocomposites by ultrasonic dispersion of their mixtures in isopropanol with addition of polyvinyl butyral. Parameters characterizing their oxygen mobility and reactivity were estimated by oxygen isotope heteroexchange, weight loss transients, temperature-programmed reduction by CH4 and reoxidation by CO2. Membranes were prepared by successively supporting on one side of substrate macroporous–mesoporous–microporous-dense layers of MIEC nanocomposites finally covered by a porous layer of La–Ni–Pt/Pr0.3Ce0.35Zr0.35O2−x catalyst. Preliminary tests of this membrane in the lab-scale reactor in the process of methane selective oxidation/oxi-dry reforming into syngas demonstrated their oxygen permeability and performance promising for the practical application.
Cite:
Sadykov V.
, Zarubina V.
, Pavlova S.
, Krieger T.
, Alikina G.
, Lukashevich A.
, Muzykantov V.
, Sadovskaya E.
, Mezentseva N.
, Zevak E.
, Belyaev V.
, Smorygo O.
Design of Asymmetric Multilayer Membranes Based on Mixed Ionic-Electronic Conducting Composites Supported on Ni-Al Foam Substrate
Catalysis Today. 2010. V.156. N3-4. P.173-180. DOI: 10.1016/j.cattod.2010.07.030 WOS Scopus РИНЦ ANCAN OpenAlex
Design of Asymmetric Multilayer Membranes Based on Mixed Ionic-Electronic Conducting Composites Supported on Ni-Al Foam Substrate
Catalysis Today. 2010. V.156. N3-4. P.173-180. DOI: 10.1016/j.cattod.2010.07.030 WOS Scopus РИНЦ ANCAN OpenAlex
Dates:
Published online: | Sep 20, 2010 |
Published print: | Oct 31, 2010 |
Identifiers:
Web of science: | WOS:000284665800014 |
Scopus: | 2-s2.0-77958083900 |
Elibrary: | 16678144 |
Chemical Abstracts: | 2010:1339718 |
Chemical Abstracts (print): | 154:68379 |
OpenAlex: | W2125887438 |