4.7 Article

Enhanced H2 production by using La5.5WO11.25-δ-La0.8Sr0.2FeO3-δ mixed oxygen ion-proton-electron triple-conducting membrane

Journal

INTERNATIONAL JOURNAL OF HYDROGEN ENERGY
Volume 46, Issue 66, Pages 33143-33151

Publisher

PERGAMON-ELSEVIER SCIENCE LTD
DOI: 10.1016/j.ijhydene.2021.07.134

Keywords

Mixed conducting membrane; Counter-permeation; Hydrogen production; Water splitting

Funding

  1. National Natural Science Foundation of China [22008250, 21536005, 51761145107]
  2. Key Research & Development Project of Shandong (Major innovation projects) [2019JZZY010905]
  3. Science Foundation of the Chinese Academy of Sciences [YJKYYQ20190076]
  4. QIBEBT and Dalian National Laboratory For Clean Energy, CAS (QIBEBT) [I201929]

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By developing a mixed oxygen ion-proton-electron triple-conducting membrane LWO-LSF, a high H-2 flux in H-2 production was achieved by enhancing H-2 production efficiency through the permeation and counter-permeation of proton and oxygen ion.
Although lanthanum tungstates (Ln(n)WO(12)(-delta)) show superior CO2-tolerance compared to the traditional perovskite-type oxides, their hydrogen permeation fluxes are not competitive. Herein, a mixed oxygen ion-proton-electron triple-conducting membrane with a nominal composition of La5.5WO11.25-delta-La0.8Sr0.2FeO3-delta (LWO-LSF) was developed for H-2 production. The triple-conducting membrane is composed of a LWO phase with proton conductivity and a LSF phase with mixed oxygen ion-electron conductivities. In the LWO-LSF membrane, proton (H+) permeation and oxygen ion (O2-) counter-permeation property was simultaneously displayed. The improved H-2 production can be ascribed to (1) hydrogen permeated as H+ through LWO phase, and (2) hydrogen produced from water splitting that is enhanced by O2- counter-permeation through LSF phase. A higher H-2 flux of 0.15 mL min(-1) cm(-2) was achieved at 900 degrees C using LWO-LSF triple-conducting membrane, compared with the conventional proton-electron conducting membranes LWO or La5.5WO11.25-delta-La0.8Sr0.2CrO3-delta (LWO-LSC). Furthermore, the constant H-2 fluxes in various atmospheres indicated the good stability of LWO-LSF membrane in simulated raw hydrogen. (C) 2021 Hydrogen Energy Publications LLC. Published by Elsevier Ltd. All rights reserved.

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