TY - JOUR
T1 - Relationship between microstructure and deformation of porous Ni-based cermets under redox cycling
AU - Sato, Kazuhisa
AU - Watanabe, Satoshi
AU - Huang, Yihui
AU - Miyasaka, Taihei
AU - Matsui, Toshiaki
AU - Yashiro, Keiji
AU - Kawada, Tatsuya
AU - Amezawa, Koji
AU - Kumada, Keigo
AU - Eguchi, Koichi
N1 - Funding Information:
This study was funded by New Energy and Industrial Technology Development Organization (NEDO) (JPNP20003) and, MEXT under Grants-in-Aid for Scientific Research (B) (No.16K14052), (No. 16H04229). The sponsors had no control over the design, interpretation, writing or publication of this study. The corresponding author had full access to all the data in the study and had final responsibility for the decision to submit for publication.
Publisher Copyright:
© 2021, The Author(s).
PY - 2021/10
Y1 - 2021/10
N2 - This paper discusses the relationship between the elongation and compression behavior and microstructural changes under redox cycles of porous Ni(O)–YSZ cermets for solid oxide fuel cells (SOFC). Mechanical damage in SOFC and SOEC is one of the most important degradation factors governing the electrical performance of cells. Therefore, it is necessary to know the mechanical properties of each component material, such as elastic and deformation properties, in the operating environment. Particularly, of the Ni(O)–YSZ cermets which currently makes up 90% of the volume of the cell, with present mainstream anode supported SOFC and SOEC. Therefore, understanding the properties of the Ni(O)–YSZ cermets plays an important role in ensuring the performance of the entire SOFC and SOEC. In this study, the microstructural changes of Ni(O)–YSZ cermet by reduction, re-oxidation and re-reduction were observed in detail using microstructural observations and systematically compared with the dimensional change behavior. For the dimensional change behavior, a simple model considering the initial porosity and Ni content is proposed, which successfully predicts the dimensional change due to re-oxidation. Furthermore, Ni(O)–YSZ cermets with high Ni content show large initial dimensional changes, but the dimensional reversibility improves with increase of the number of redox cycles.
AB - This paper discusses the relationship between the elongation and compression behavior and microstructural changes under redox cycles of porous Ni(O)–YSZ cermets for solid oxide fuel cells (SOFC). Mechanical damage in SOFC and SOEC is one of the most important degradation factors governing the electrical performance of cells. Therefore, it is necessary to know the mechanical properties of each component material, such as elastic and deformation properties, in the operating environment. Particularly, of the Ni(O)–YSZ cermets which currently makes up 90% of the volume of the cell, with present mainstream anode supported SOFC and SOEC. Therefore, understanding the properties of the Ni(O)–YSZ cermets plays an important role in ensuring the performance of the entire SOFC and SOEC. In this study, the microstructural changes of Ni(O)–YSZ cermet by reduction, re-oxidation and re-reduction were observed in detail using microstructural observations and systematically compared with the dimensional change behavior. For the dimensional change behavior, a simple model considering the initial porosity and Ni content is proposed, which successfully predicts the dimensional change due to re-oxidation. Furthermore, Ni(O)–YSZ cermets with high Ni content show large initial dimensional changes, but the dimensional reversibility improves with increase of the number of redox cycles.
KW - Anode
KW - Dilatometry
KW - Elongation/compression
KW - FIB-SEM
KW - Morphology
KW - Ni content
KW - Porosity
KW - Solid oxide electrolysis cells (SOEC)
KW - Solid oxide fuel cells (SOFC)
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U2 - 10.1007/s42452-021-04789-w
DO - 10.1007/s42452-021-04789-w
M3 - Article
AN - SCOPUS:85115789175
SN - 2523-3971
VL - 3
JO - SN Applied Sciences
JF - SN Applied Sciences
IS - 10
M1 - 810
ER -