The use of ferrites as highly active oxygen storage materials for chemical looping hydrogen production under intermediate temperature

© 2019 Hydrogen Energy Publications LLC Shifting chemical looping from high temperatures to intermediate temperatures could mitigate the materials from sintering and benefit for longer durability as well as process economy. However, oxygen carriers cannot perform sufficiently due to the degrading ef...

Full description

Saved in:
Bibliographic Details
Main Authors: Min Li, Yi Du, Yu Qiu, Li Ma, Dongxu Cui, Shuai Zhang, Nakorn Tippayawong, Dewang Zeng, Rui Xiao
Format: Journal
Published: 2020
Subjects:
Online Access:https://www.scopus.com/inward/record.uri?partnerID=HzOxMe3b&scp=85073032045&origin=inward
http://cmuir.cmu.ac.th/jspui/handle/6653943832/67794
Tags: Add Tag
No Tags, Be the first to tag this record!
Institution: Chiang Mai University
id th-cmuir.6653943832-67794
record_format dspace
spelling th-cmuir.6653943832-677942020-04-02T15:18:22Z The use of ferrites as highly active oxygen storage materials for chemical looping hydrogen production under intermediate temperature Min Li Yi Du Yu Qiu Li Ma Dongxu Cui Shuai Zhang Nakorn Tippayawong Dewang Zeng Rui Xiao Energy Physics and Astronomy © 2019 Hydrogen Energy Publications LLC Shifting chemical looping from high temperatures to intermediate temperatures could mitigate the materials from sintering and benefit for longer durability as well as process economy. However, oxygen carriers cannot perform sufficiently due to the degrading effect at lower temperatures, resulting in the decrease of hydrogen production ability. Although doping precious metals can improve the poor performance at intermediate temperatures, the high cost impeded their large-scale application. In this paper, a range of oxygen carrier materials consisted of earth abundant elements were prepared for chemical looping hydrogen production. The results indicated that CoFe2O4 exhibited the highest hydrogen yield of 11.9 mmol·g−1 and hydrogen production rate of 0.051 mmol g−1·s−1 at 650 °C, which was 1.7 times higher than that of Fe2O3. A combined experimental and DFT calculation method was used to understand the mechanism behind the performance. The results indicated that the synergistic effect between Co and Fe increased the reactivity of the ferrite materials. The enhanced hydrogen production performance was attributed to the high reduction degree and reversible phase change. This study can be also extended to develop more active oxygen carrier for chemical looping processes at intermediate temperatures. 2020-04-02T15:04:14Z 2020-04-02T15:04:14Z 2019-11-05 Journal 03603199 2-s2.0-85073032045 10.1016/j.ijhydene.2019.09.111 https://www.scopus.com/inward/record.uri?partnerID=HzOxMe3b&scp=85073032045&origin=inward http://cmuir.cmu.ac.th/jspui/handle/6653943832/67794
institution Chiang Mai University
building Chiang Mai University Library
country Thailand
collection CMU Intellectual Repository
topic Energy
Physics and Astronomy
spellingShingle Energy
Physics and Astronomy
Min Li
Yi Du
Yu Qiu
Li Ma
Dongxu Cui
Shuai Zhang
Nakorn Tippayawong
Dewang Zeng
Rui Xiao
The use of ferrites as highly active oxygen storage materials for chemical looping hydrogen production under intermediate temperature
description © 2019 Hydrogen Energy Publications LLC Shifting chemical looping from high temperatures to intermediate temperatures could mitigate the materials from sintering and benefit for longer durability as well as process economy. However, oxygen carriers cannot perform sufficiently due to the degrading effect at lower temperatures, resulting in the decrease of hydrogen production ability. Although doping precious metals can improve the poor performance at intermediate temperatures, the high cost impeded their large-scale application. In this paper, a range of oxygen carrier materials consisted of earth abundant elements were prepared for chemical looping hydrogen production. The results indicated that CoFe2O4 exhibited the highest hydrogen yield of 11.9 mmol·g−1 and hydrogen production rate of 0.051 mmol g−1·s−1 at 650 °C, which was 1.7 times higher than that of Fe2O3. A combined experimental and DFT calculation method was used to understand the mechanism behind the performance. The results indicated that the synergistic effect between Co and Fe increased the reactivity of the ferrite materials. The enhanced hydrogen production performance was attributed to the high reduction degree and reversible phase change. This study can be also extended to develop more active oxygen carrier for chemical looping processes at intermediate temperatures.
format Journal
author Min Li
Yi Du
Yu Qiu
Li Ma
Dongxu Cui
Shuai Zhang
Nakorn Tippayawong
Dewang Zeng
Rui Xiao
author_facet Min Li
Yi Du
Yu Qiu
Li Ma
Dongxu Cui
Shuai Zhang
Nakorn Tippayawong
Dewang Zeng
Rui Xiao
author_sort Min Li
title The use of ferrites as highly active oxygen storage materials for chemical looping hydrogen production under intermediate temperature
title_short The use of ferrites as highly active oxygen storage materials for chemical looping hydrogen production under intermediate temperature
title_full The use of ferrites as highly active oxygen storage materials for chemical looping hydrogen production under intermediate temperature
title_fullStr The use of ferrites as highly active oxygen storage materials for chemical looping hydrogen production under intermediate temperature
title_full_unstemmed The use of ferrites as highly active oxygen storage materials for chemical looping hydrogen production under intermediate temperature
title_sort use of ferrites as highly active oxygen storage materials for chemical looping hydrogen production under intermediate temperature
publishDate 2020
url https://www.scopus.com/inward/record.uri?partnerID=HzOxMe3b&scp=85073032045&origin=inward
http://cmuir.cmu.ac.th/jspui/handle/6653943832/67794
_version_ 1681426700988055552