Influence of CO2 on the oxygen permeation performance and the microstructure of perovskite-type (Ba0.5Sr0.5)(Co0.8Fe0.2)O3-δ membranes

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  • South China University of Technology
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OriginalspracheEnglisch
Seiten (von - bis)44-52
Seitenumfang9
FachzeitschriftJournal of membrane science
Jahrgang293
Ausgabenummer1-2
Frühes Online-Datum1 Feb. 2007
PublikationsstatusVeröffentlicht - 20 Apr. 2007

Abstract

The influence of CO2 on the oxygen permeation performance of perovskite-type (Ba0.5Sr0.5)(Co0.8Fe0.2)O3-δ (BSCF) membranes under different experimental conditions is presented. First, pure CO2 was applied as the sweep gas at 875 °C yielding an immediate cessation of the oxygen permeation. In order to probe the reversibility of this stagnancy, several cycles of changing the sweep gas between helium and CO2 were conducted. The analysis of the microstructure after permeation experiments were carried out by transmission electron microscopy (TEM), X-ray diffraction (XRD) as well as by scanning electron microscopy (SEM). It was found that both microstructure as well as oxygen permeation are recovered in a helium atmosphere. Additionally, long-time treatment with pure CO2 for 72 h on the permeate side and the concentration effect of CO2 in the sweep gas were accomplished showing that the perovskite structure is impaired only up to a depth of 50 μm. Further on, the impact of CO2 on the feed side was examined by adding certain amounts of CO2 to the feed air. It was found that the impact of CO2 on the oxygen permeation applied in the sweep gas is superior to that applied on the feed gas.

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Influence of CO2 on the oxygen permeation performance and the microstructure of perovskite-type (Ba0.5Sr0.5)(Co0.8Fe0.2)O3-δ membranes. / Arnold, Mirko; Wang, Haihui; Feldhoff, Armin.
in: Journal of membrane science, Jahrgang 293, Nr. 1-2, 20.04.2007, S. 44-52.

Publikation: Beitrag in FachzeitschriftArtikelForschungPeer-Review

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title = "Influence of CO2 on the oxygen permeation performance and the microstructure of perovskite-type (Ba0.5Sr0.5)(Co0.8Fe0.2)O3-δ membranes",
abstract = "The influence of CO2 on the oxygen permeation performance of perovskite-type (Ba0.5Sr0.5)(Co0.8Fe0.2)O3-δ (BSCF) membranes under different experimental conditions is presented. First, pure CO2 was applied as the sweep gas at 875 °C yielding an immediate cessation of the oxygen permeation. In order to probe the reversibility of this stagnancy, several cycles of changing the sweep gas between helium and CO2 were conducted. The analysis of the microstructure after permeation experiments were carried out by transmission electron microscopy (TEM), X-ray diffraction (XRD) as well as by scanning electron microscopy (SEM). It was found that both microstructure as well as oxygen permeation are recovered in a helium atmosphere. Additionally, long-time treatment with pure CO2 for 72 h on the permeate side and the concentration effect of CO2 in the sweep gas were accomplished showing that the perovskite structure is impaired only up to a depth of 50 μm. Further on, the impact of CO2 on the feed side was examined by adding certain amounts of CO2 to the feed air. It was found that the impact of CO2 on the oxygen permeation applied in the sweep gas is superior to that applied on the feed gas.",
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author = "Mirko Arnold and Haihui Wang and Armin Feldhoff",
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Download

TY - JOUR

T1 - Influence of CO2 on the oxygen permeation performance and the microstructure of perovskite-type (Ba0.5Sr0.5)(Co0.8Fe0.2)O3-δ membranes

AU - Arnold, Mirko

AU - Wang, Haihui

AU - Feldhoff, Armin

N1 - Funding Information: The authors greatly acknowledge the financial support by DFG grant no. FE 928/1-1 and fruitful discussions with Prof. Jürgen Caro.

PY - 2007/4/20

Y1 - 2007/4/20

N2 - The influence of CO2 on the oxygen permeation performance of perovskite-type (Ba0.5Sr0.5)(Co0.8Fe0.2)O3-δ (BSCF) membranes under different experimental conditions is presented. First, pure CO2 was applied as the sweep gas at 875 °C yielding an immediate cessation of the oxygen permeation. In order to probe the reversibility of this stagnancy, several cycles of changing the sweep gas between helium and CO2 were conducted. The analysis of the microstructure after permeation experiments were carried out by transmission electron microscopy (TEM), X-ray diffraction (XRD) as well as by scanning electron microscopy (SEM). It was found that both microstructure as well as oxygen permeation are recovered in a helium atmosphere. Additionally, long-time treatment with pure CO2 for 72 h on the permeate side and the concentration effect of CO2 in the sweep gas were accomplished showing that the perovskite structure is impaired only up to a depth of 50 μm. Further on, the impact of CO2 on the feed side was examined by adding certain amounts of CO2 to the feed air. It was found that the impact of CO2 on the oxygen permeation applied in the sweep gas is superior to that applied on the feed gas.

AB - The influence of CO2 on the oxygen permeation performance of perovskite-type (Ba0.5Sr0.5)(Co0.8Fe0.2)O3-δ (BSCF) membranes under different experimental conditions is presented. First, pure CO2 was applied as the sweep gas at 875 °C yielding an immediate cessation of the oxygen permeation. In order to probe the reversibility of this stagnancy, several cycles of changing the sweep gas between helium and CO2 were conducted. The analysis of the microstructure after permeation experiments were carried out by transmission electron microscopy (TEM), X-ray diffraction (XRD) as well as by scanning electron microscopy (SEM). It was found that both microstructure as well as oxygen permeation are recovered in a helium atmosphere. Additionally, long-time treatment with pure CO2 for 72 h on the permeate side and the concentration effect of CO2 in the sweep gas were accomplished showing that the perovskite structure is impaired only up to a depth of 50 μm. Further on, the impact of CO2 on the feed side was examined by adding certain amounts of CO2 to the feed air. It was found that the impact of CO2 on the oxygen permeation applied in the sweep gas is superior to that applied on the feed gas.

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