Mechanism insight into enhanced oxygen reduction reaction over heterovalent ion incorporated pyrochlore Pr2Zr2O7 for direct ammonia solid oxide fuel cells
Huihuang Fang
1, 2
,
Shiqing Yang
1
,
Shaohua Yang
1
,
Weijie Ye
1
,
Fulan Zhong
1, 2
,
Yu Luo
1, 2
,
Shaorong Wang
3
,
Shaorong Wang
3
,
Chongqi Chen
1, 2
,
Lilong Jiang
1, 2
,
Lilong Jiang
1, 2
2
Qingyuan Innovation Laboratory, Quanzhou, Fujian 362801, PR China
|
Publication type: Journal Article
Publication date: 2024-05-01
scimago Q1
wos Q2
SJR: 0.840
CiteScore: 7.9
Impact factor: 4.3
ISSN: 00092509, 18734405
General Chemistry
General Chemical Engineering
Industrial and Manufacturing Engineering
Applied Mathematics
Abstract
An effective B-site doping strategy through heterovalent ions was developed to synthesize a series of pyrochlore Pr2Zr1.95X0.05O7+δ (PZX, X = Mn, Sc, Sn, Nb, Mo, Al, Ga, In) for the direct ammonia solid oxide fuel cell (DA-SOFC) cathode. To guide the design of efficient cathodes for DA-SOFC, we explore the relationships between the ionic radius/valence of dopant and electrochemical performance. In view of the energy matching and interaction between the dopant and the host lattice, the substitution of trivalent Sc3+ with similar ionic radius for tetravalent Zr4+ can greatly improve the oxygen reduction reaction activity of Pr2Zr2O7 due to the reduced bond energy of 48f-oxygen ions in octahedral [ZrO6] units. As a result, the anode-supported single cell Ni-YSZ|YSZ|PZSc-60YSZ yields an output power density of 0.44 and 1.45 W·cm−2 at 600 and 800 °C with ammonia fuel, outperforming PZX (X = Mn, Sn, Nb, Mo, Al, Ga, In) and common La0.8Sr0.2MnO3 (LSM)-based DA-SOFC. The detailed characterizations are employed to gain insight into the structure-activity relationship and reaction mechanism.
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9
Total citations:
9
Citations from 2024:
9
(100%)
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Fang H. et al. Mechanism insight into enhanced oxygen reduction reaction over heterovalent ion incorporated pyrochlore Pr2Zr2O7 for direct ammonia solid oxide fuel cells // Chemical Engineering Science. 2024. Vol. 290. p. 119778.
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Fang H., Yang S., Yang S., Ye W., Zhong F., Luo Yu., Wang S., Wang S., Chen C., Jiang L., Jiang L. Mechanism insight into enhanced oxygen reduction reaction over heterovalent ion incorporated pyrochlore Pr2Zr2O7 for direct ammonia solid oxide fuel cells // Chemical Engineering Science. 2024. Vol. 290. p. 119778.
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TY - JOUR
DO - 10.1016/j.ces.2024.119778
UR - https://linkinghub.elsevier.com/retrieve/pii/S0009250924000782
TI - Mechanism insight into enhanced oxygen reduction reaction over heterovalent ion incorporated pyrochlore Pr2Zr2O7 for direct ammonia solid oxide fuel cells
T2 - Chemical Engineering Science
AU - Fang, Huihuang
AU - Yang, Shiqing
AU - Yang, Shaohua
AU - Ye, Weijie
AU - Zhong, Fulan
AU - Luo, Yu
AU - Wang, Shaorong
AU - Wang, Shaorong
AU - Chen, Chongqi
AU - Jiang, Lilong
AU - Jiang, Lilong
PY - 2024
DA - 2024/05/01
PB - Elsevier
SP - 119778
VL - 290
SN - 0009-2509
SN - 1873-4405
ER -
Cite this
BibTex (up to 50 authors)
Copy
@article{2024_Fang,
author = {Huihuang Fang and Shiqing Yang and Shaohua Yang and Weijie Ye and Fulan Zhong and Yu Luo and Shaorong Wang and Shaorong Wang and Chongqi Chen and Lilong Jiang and Lilong Jiang},
title = {Mechanism insight into enhanced oxygen reduction reaction over heterovalent ion incorporated pyrochlore Pr2Zr2O7 for direct ammonia solid oxide fuel cells},
journal = {Chemical Engineering Science},
year = {2024},
volume = {290},
publisher = {Elsevier},
month = {may},
url = {https://linkinghub.elsevier.com/retrieve/pii/S0009250924000782},
pages = {119778},
doi = {10.1016/j.ces.2024.119778}
}
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