TY - JOUR
T1 - Enhancing catalytic activity of CO2 electrolysis by building efficient and durable heterostructure for solid oxide electrolysis cell cathode
AU - Lu, Chengyi
AU - Xu, Chunming
AU - Sun, Wang
AU - Ren, Rongzheng
AU - Qiao, Jinshuo
AU - Wang, Zhenhua
AU - Sun, Kening
AU - Pan, Guang
AU - Cao, Yonghui
N1 - Publisher Copyright:
© 2023 Elsevier B.V.
PY - 2023/8/1
Y1 - 2023/8/1
N2 - Solid oxide electrolysis cell (SOEC) has great application prospects in the fields of renewable energy storage, CO2 capture and utilization. One of the key factors hindering the development of SOEC is the lack of suitable cathode materials. In this study, we designed and developed a kind of new micro-nano heterostructure materials Co@Sr1.95Fe1.4Co0.1Mo0.4Ti0.1O6-δ (Co@SFCMT), Co nanoparticles uniformly distributed on the SFCMT matrix and provided rich electric catalytic active sites, SFCMT showed excellent oxygen ion transport performance. The synergistic effect of Co nanoparticles and Sr1.95Fe1.4Co0.1Mo0.4Ti0.1O6-δ (SFCMT) increased the rate of CO2 reduction reaction (CO2RR). At 1.8 V and 800 °C, the maximum electrolytic current density of the cell with Co@SFCMT as the cathode reached 2.57 A cm−2. In addition, Co@SFCMT showed good stability at 1.5 V and 750 °C, with no performance decay even after 200 h of continuous operation. The micro-nano heterostructure design strategy of perovskite oxides will not only open new avenues for designing SOEC electrodes, but also be expected to promote the development of other energy storage and conversion systems.
AB - Solid oxide electrolysis cell (SOEC) has great application prospects in the fields of renewable energy storage, CO2 capture and utilization. One of the key factors hindering the development of SOEC is the lack of suitable cathode materials. In this study, we designed and developed a kind of new micro-nano heterostructure materials Co@Sr1.95Fe1.4Co0.1Mo0.4Ti0.1O6-δ (Co@SFCMT), Co nanoparticles uniformly distributed on the SFCMT matrix and provided rich electric catalytic active sites, SFCMT showed excellent oxygen ion transport performance. The synergistic effect of Co nanoparticles and Sr1.95Fe1.4Co0.1Mo0.4Ti0.1O6-δ (SFCMT) increased the rate of CO2 reduction reaction (CO2RR). At 1.8 V and 800 °C, the maximum electrolytic current density of the cell with Co@SFCMT as the cathode reached 2.57 A cm−2. In addition, Co@SFCMT showed good stability at 1.5 V and 750 °C, with no performance decay even after 200 h of continuous operation. The micro-nano heterostructure design strategy of perovskite oxides will not only open new avenues for designing SOEC electrodes, but also be expected to promote the development of other energy storage and conversion systems.
KW - CO reduction reaction
KW - Cathode material
KW - In situ exsolution
KW - Micro-nano heterostructure
KW - Perovskite
KW - Solid oxide electrolysis cell
UR - http://www.scopus.com/inward/record.url?scp=85157995703&partnerID=8YFLogxK
U2 - 10.1016/j.jpowsour.2023.233134
DO - 10.1016/j.jpowsour.2023.233134
M3 - Article
AN - SCOPUS:85157995703
SN - 0378-7753
VL - 574
JO - Journal of Power Sources
JF - Journal of Power Sources
M1 - 233134
ER -