TY - JOUR
T1 - A-site cations in stannate perovskites affect their performance in catalysing CO2 electroreduction
AU - Wang, Guoqing
AU - Yuan, Hao
AU - Zhang, Haiyan
AU - Liu, Ruigang
AU - Yue, Shanhu
AU - Yan, Jiaxu
AU - Xie, Xiaoji
AU - Lu, Min
N1 - Publisher Copyright:
© 2025 The Royal Society of Chemistry.
PY - 2025/1/21
Y1 - 2025/1/21
N2 - Stannate perovskites (MSnO3), benefiting from their high production of HCOOH and the perovskite structure-enabled tunability of properties, are emerging as promising catalysts for electrochemical CO2 reduction (CO2R). However, optimizing the catalytic performance of MSnO3 for CO2R remains largely unexplored. Here, we systematically study the catalytic performance of MSnO3 with a distinct A-site cation, M (M = Ba, Sr, and Ca), for CO2R. Our experimental results show that the M cation dramatically affects the catalytic performance, especially the selectivity and stability. In particular, the CaSnO3-based catalyst exhibits the highest selectivity to HCOOH and stability but the lowest activity. Further theoretical investigations reveal that the A-site cation can affect the selectivity of MSnO3 for the CO2R reaction and may impact the stability of MSnO3. Both experimental and theoretical findings reveal that stannate perovskites can be effective and selective catalysts for CO2R, while their stability needs to be considered carefully. These results should shed light on the rational design of perovskite catalysts with desired performance for CO2R.
AB - Stannate perovskites (MSnO3), benefiting from their high production of HCOOH and the perovskite structure-enabled tunability of properties, are emerging as promising catalysts for electrochemical CO2 reduction (CO2R). However, optimizing the catalytic performance of MSnO3 for CO2R remains largely unexplored. Here, we systematically study the catalytic performance of MSnO3 with a distinct A-site cation, M (M = Ba, Sr, and Ca), for CO2R. Our experimental results show that the M cation dramatically affects the catalytic performance, especially the selectivity and stability. In particular, the CaSnO3-based catalyst exhibits the highest selectivity to HCOOH and stability but the lowest activity. Further theoretical investigations reveal that the A-site cation can affect the selectivity of MSnO3 for the CO2R reaction and may impact the stability of MSnO3. Both experimental and theoretical findings reveal that stannate perovskites can be effective and selective catalysts for CO2R, while their stability needs to be considered carefully. These results should shed light on the rational design of perovskite catalysts with desired performance for CO2R.
UR - http://www.scopus.com/inward/record.url?scp=85216432716&partnerID=8YFLogxK
U2 - 10.1039/d4qm01042f
DO - 10.1039/d4qm01042f
M3 - 文章
AN - SCOPUS:85216432716
SN - 2052-1537
VL - 9
SP - 856
EP - 865
JO - Materials Chemistry Frontiers
JF - Materials Chemistry Frontiers
IS - 5
ER -