Understanding the doping effect toward the design of CO2-tolerant perovskite membranes with enhanced oxygen permeability

Most perovskites possessing high oxygen permeability always suffer from low chemical stability under CO2-containing conditions. A comprehensive knowledge for improving the resistance toward CO2 through doping strategy is still lacking. In this work, we propose a series of perovskite oxides, i.e., Sr...

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Main Authors: Zhang, Z., Chen, D., Dong, F., Xu, X., Hao, Y., Shao, Zongping
Format: Journal Article
Published: Elsevier BV 2016
Online Access:http://hdl.handle.net/20.500.11937/7705
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author Zhang, Z.
Chen, D.
Dong, F.
Xu, X.
Hao, Y.
Shao, Zongping
author_facet Zhang, Z.
Chen, D.
Dong, F.
Xu, X.
Hao, Y.
Shao, Zongping
author_sort Zhang, Z.
building Curtin Institutional Repository
collection Online Access
description Most perovskites possessing high oxygen permeability always suffer from low chemical stability under CO2-containing conditions. A comprehensive knowledge for improving the resistance toward CO2 through doping strategy is still lacking. In this work, we propose a series of perovskite oxides, i.e., SrFe0.8M0.2O3-d (M=Ti4+, Nb5+, and Cr6+), and systematically investigate the effect of dopants with the high oxidation state on the phase structure, chemical stability, sintering behavior, conducting properties, and oxygen permeability. The oxygen permeability and the CO2 tolerance of the membranes are closely related to the oxidation state of the dopants for altering the oxygen vacancy concentration, the oxidation state of Fe ions and the average metal-oxygen bond energy. The balance of oxygen permeability and the CO2 tolerance should be taken into account during practical application. This work thus provides useful guidelines for the future development of perovskite oxides through B-site doping for efficient air separation.
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institution Curtin University Malaysia
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last_indexed 2025-11-14T06:17:30Z
publishDate 2016
publisher Elsevier BV
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spelling curtin-20.500.11937-77052017-09-13T15:36:41Z Understanding the doping effect toward the design of CO2-tolerant perovskite membranes with enhanced oxygen permeability Zhang, Z. Chen, D. Dong, F. Xu, X. Hao, Y. Shao, Zongping Most perovskites possessing high oxygen permeability always suffer from low chemical stability under CO2-containing conditions. A comprehensive knowledge for improving the resistance toward CO2 through doping strategy is still lacking. In this work, we propose a series of perovskite oxides, i.e., SrFe0.8M0.2O3-d (M=Ti4+, Nb5+, and Cr6+), and systematically investigate the effect of dopants with the high oxidation state on the phase structure, chemical stability, sintering behavior, conducting properties, and oxygen permeability. The oxygen permeability and the CO2 tolerance of the membranes are closely related to the oxidation state of the dopants for altering the oxygen vacancy concentration, the oxidation state of Fe ions and the average metal-oxygen bond energy. The balance of oxygen permeability and the CO2 tolerance should be taken into account during practical application. This work thus provides useful guidelines for the future development of perovskite oxides through B-site doping for efficient air separation. 2016 Journal Article http://hdl.handle.net/20.500.11937/7705 10.1016/j.memsci.2016.07.043 Elsevier BV restricted
spellingShingle Zhang, Z.
Chen, D.
Dong, F.
Xu, X.
Hao, Y.
Shao, Zongping
Understanding the doping effect toward the design of CO2-tolerant perovskite membranes with enhanced oxygen permeability
title Understanding the doping effect toward the design of CO2-tolerant perovskite membranes with enhanced oxygen permeability
title_full Understanding the doping effect toward the design of CO2-tolerant perovskite membranes with enhanced oxygen permeability
title_fullStr Understanding the doping effect toward the design of CO2-tolerant perovskite membranes with enhanced oxygen permeability
title_full_unstemmed Understanding the doping effect toward the design of CO2-tolerant perovskite membranes with enhanced oxygen permeability
title_short Understanding the doping effect toward the design of CO2-tolerant perovskite membranes with enhanced oxygen permeability
title_sort understanding the doping effect toward the design of co2-tolerant perovskite membranes with enhanced oxygen permeability
url http://hdl.handle.net/20.500.11937/7705