4.7 Article

Enhanced CO2-tolerance and hydrogen separation performance of Ba-based ceramic membrane modified by Ce0.9Gd0.1O2-8 surface layer

Journal

SEPARATION AND PURIFICATION TECHNOLOGY
Volume 303, Issue -, Pages -

Publisher

ELSEVIER
DOI: 10.1016/j.seppur.2022.122246

Keywords

H2 separation; Mixed conducting membrane; Doped ceria; Surface modification; Stability

Funding

  1. National Natural Science Foundation of China [22105216, 22108286]
  2. China Postdoctoral Science Foundation [2021M703317]
  3. Shandong Provincial Postdoctoral Innovation Project [202101011]
  4. QIBEBT and Dalian National Laboratory for Clean Energy, CAS [UN201809]

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Interest in mixed conducting ceramic membrane for efficient hydrogen separation is growing. The addition of gadolinium-doped ceria (CGO) to alkaline earth metal membranes improves their surface activity and enhances the H2 separation flux. The modified membrane also shows improved CO2-tolerance and maintains stable H2 separation performance under CO2-containing atmosphere, providing new possibilities for alkaline-earth-metal-containing ceramic membrane in H2 purification.
Interest in mixed conducting ceramic membrane for efficient hydrogen separation is growing. However, the membranes with alkaline earth metal are susceptible to CO2 due to the drastic carbonation and irreversible deterioration of membrane, which significantly impedes their applications. Herein, gadolinium-doped ceria (Ce0.9Gd0.1O2-8, CGO) with robust chemical stability was employed to modify Ba-based dual-phase membrane BaCe0.85Fe0.15O3-8-BaFe0.85Ce0.15O3-8 (BCF-BFC) by a simple drop coating method. Due to the improved surface activity on the membrane, the CGO-modified BCF-BFC membrane (CGO/BCF-BFC) exhibited an enhanced H2 separation flux of 0.96 mL min-1 cm-2 at 860 degrees C, which is nearly 1.3-time improvement than the unmodified BCF-BFC membrane. Furthermore, benefitting from the reduction of CO2 adsorption and suppression of car-bonate formation on the surface of membrane, an improved CO2-tolerance was observed over the CGO/BCF-BFC, and a high and stable H2 separation flux of 0.60 mL min-1 cm-2 was retained under CO2-containing atmosphere, while BCF-BFC membrane showcased continually deteriorating H2 separation performance at 900 degrees C. The ach-ieved H2 separation flux along with the improved CO2-tolerance paves a new way towards the future application of alkaline-earth-metal-containing ceramic membrane for H2 purification.

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