Study on the surface segregation of mixed ionic-electronic conductor lanthanum-based perovskite oxide La1−xSrxCo1−yFeyO3−δ materials

High-temperature solid oxide fuel cells (HT-SOFCs) generally operate at 800°C to 1000°C and intermediate temperature SOFCs (IT-SOFCs) at 600°C to 800°C. Reducing the SOFCs operational from high to ITs results in many issues mainly at the cathode site. One of the shortcomings that have been addressed...

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Published in:International Journal of Energy Research
Main Author: Safian S.D.; Abd Malek N.I.; Jamil Z.; Lee S.-W.; Tseng C.-J.; Osman N.
Format: Review
Language:English
Published: John Wiley and Sons Ltd 2022
Online Access:https://www.scopus.com/inward/record.uri?eid=2-s2.0-85124564119&doi=10.1002%2fer.7733&partnerID=40&md5=3b0a29ef6d120d2c13515374c218f8f9
id 2-s2.0-85124564119
spelling 2-s2.0-85124564119
Safian S.D.; Abd Malek N.I.; Jamil Z.; Lee S.-W.; Tseng C.-J.; Osman N.
Study on the surface segregation of mixed ionic-electronic conductor lanthanum-based perovskite oxide La1−xSrxCo1−yFeyO3−δ materials
2022
International Journal of Energy Research
46
6
10.1002/er.7733
https://www.scopus.com/inward/record.uri?eid=2-s2.0-85124564119&doi=10.1002%2fer.7733&partnerID=40&md5=3b0a29ef6d120d2c13515374c218f8f9
High-temperature solid oxide fuel cells (HT-SOFCs) generally operate at 800°C to 1000°C and intermediate temperature SOFCs (IT-SOFCs) at 600°C to 800°C. Reducing the SOFCs operational from high to ITs results in many issues mainly at the cathode site. One of the shortcomings that have been addressed is high polarization losses associated with oxygen reduction reaction (ORR) and degradation of La1−xSrxCo1−yFeyO3−δ (LSCF) cathode materials. Strontium (Sr) has been discovered to segregate and inhibit the surface-active site for the ORR under specified conditions (temperature, relative humidity, and suppressing activity). It enriched the surface, formed Sr-rich secondary phases, and eventually changes the composition and the structure of the perovskite surfaces. Therefore, this review aims to summarize the occurrences of Sr segregation at the LSCF cathode surfaces as a function of operating conditions and their effects on the material performance. In addition, the characterization techniques utilized to investigate the Sr segregation, and strategies for Sr segregation mitigation are also discussed. © 2022 John Wiley & Sons Ltd.
John Wiley and Sons Ltd
0363907X
English
Review
All Open Access; Gold Open Access
author Safian S.D.; Abd Malek N.I.; Jamil Z.; Lee S.-W.; Tseng C.-J.; Osman N.
spellingShingle Safian S.D.; Abd Malek N.I.; Jamil Z.; Lee S.-W.; Tseng C.-J.; Osman N.
Study on the surface segregation of mixed ionic-electronic conductor lanthanum-based perovskite oxide La1−xSrxCo1−yFeyO3−δ materials
author_facet Safian S.D.; Abd Malek N.I.; Jamil Z.; Lee S.-W.; Tseng C.-J.; Osman N.
author_sort Safian S.D.; Abd Malek N.I.; Jamil Z.; Lee S.-W.; Tseng C.-J.; Osman N.
title Study on the surface segregation of mixed ionic-electronic conductor lanthanum-based perovskite oxide La1−xSrxCo1−yFeyO3−δ materials
title_short Study on the surface segregation of mixed ionic-electronic conductor lanthanum-based perovskite oxide La1−xSrxCo1−yFeyO3−δ materials
title_full Study on the surface segregation of mixed ionic-electronic conductor lanthanum-based perovskite oxide La1−xSrxCo1−yFeyO3−δ materials
title_fullStr Study on the surface segregation of mixed ionic-electronic conductor lanthanum-based perovskite oxide La1−xSrxCo1−yFeyO3−δ materials
title_full_unstemmed Study on the surface segregation of mixed ionic-electronic conductor lanthanum-based perovskite oxide La1−xSrxCo1−yFeyO3−δ materials
title_sort Study on the surface segregation of mixed ionic-electronic conductor lanthanum-based perovskite oxide La1−xSrxCo1−yFeyO3−δ materials
publishDate 2022
container_title International Journal of Energy Research
container_volume 46
container_issue 6
doi_str_mv 10.1002/er.7733
url https://www.scopus.com/inward/record.uri?eid=2-s2.0-85124564119&doi=10.1002%2fer.7733&partnerID=40&md5=3b0a29ef6d120d2c13515374c218f8f9
description High-temperature solid oxide fuel cells (HT-SOFCs) generally operate at 800°C to 1000°C and intermediate temperature SOFCs (IT-SOFCs) at 600°C to 800°C. Reducing the SOFCs operational from high to ITs results in many issues mainly at the cathode site. One of the shortcomings that have been addressed is high polarization losses associated with oxygen reduction reaction (ORR) and degradation of La1−xSrxCo1−yFeyO3−δ (LSCF) cathode materials. Strontium (Sr) has been discovered to segregate and inhibit the surface-active site for the ORR under specified conditions (temperature, relative humidity, and suppressing activity). It enriched the surface, formed Sr-rich secondary phases, and eventually changes the composition and the structure of the perovskite surfaces. Therefore, this review aims to summarize the occurrences of Sr segregation at the LSCF cathode surfaces as a function of operating conditions and their effects on the material performance. In addition, the characterization techniques utilized to investigate the Sr segregation, and strategies for Sr segregation mitigation are also discussed. © 2022 John Wiley & Sons Ltd.
publisher John Wiley and Sons Ltd
issn 0363907X
language English
format Review
accesstype All Open Access; Gold Open Access
record_format scopus
collection Scopus
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