TY - JOUR
T1 - New Insight into the Electronic Effect for Cu Porphyrin Catalysts in Electrocatalytic of CO2 into CH4
AU - Jiang, Hao
AU - Zhao, Peng
AU - Shen, Haidong
AU - Yang, Shaowei
AU - Gao, Runze
AU - Guo, Ying
AU - Cao, Yueling
AU - Zhang, Qiuyu
AU - Zhang, Hepeng
N1 - Publisher Copyright:
© 2023 Wiley-VCH GmbH.
PY - 2024/1/11
Y1 - 2024/1/11
N2 - Perturbation of the copper (Cu) active site by electron manipulation is a crucial factor in determining the activity and selectivity of electrochemical carbon dioxide (CO2) reduction reaction (e-CO2RR) in Cu-based molecular catalysts. However, much ambiguity is present concerning their electronic structure–function relationships. Here, three molecular Cu-based porphyrin catalysts with different electron densities at the Cu active site, Cu tetrakis(4-methoxyphenyl)porphyrin (Cu─T(OMe)PP), Cu tetraphenylporphyrin (Cu─THPP), and Cu tetrakis(4-bromophenyl)porphyrin (Cu─TBrPP), are prepared. Although all three catalysts exhibit e-CO2RR activity and the same reaction pathway, their performance is significantly affected by the electronic structure of the Cu site. Theoretical and experimental investigations verify that the conjugated effect of ─OCH3 and ─Br groups lowers the highest occupied molecular orbital (HOMO)–lowest unoccupied molecular orbitals (LUMO) gap of Cu─T(OMe)PP and Cu─TBrPP, promoting faster electron transfer between Cu and CO2, thereby improving their e-CO2RR activity. Moreover, the high inductive effect of ─Br group reduces the electron density of Cu active site of Cu─TBrPP, facilitating the hydrolysis of the bound H2O and thus creating a preferable local microenvironment, further enhancing the catalytic performance. This work provides new insights into the relationships between the substituent group characteristics with e-CO2RR performance and is highly instructive for the design of efficient Cu-based e-CO2RR electrocatalysts.
AB - Perturbation of the copper (Cu) active site by electron manipulation is a crucial factor in determining the activity and selectivity of electrochemical carbon dioxide (CO2) reduction reaction (e-CO2RR) in Cu-based molecular catalysts. However, much ambiguity is present concerning their electronic structure–function relationships. Here, three molecular Cu-based porphyrin catalysts with different electron densities at the Cu active site, Cu tetrakis(4-methoxyphenyl)porphyrin (Cu─T(OMe)PP), Cu tetraphenylporphyrin (Cu─THPP), and Cu tetrakis(4-bromophenyl)porphyrin (Cu─TBrPP), are prepared. Although all three catalysts exhibit e-CO2RR activity and the same reaction pathway, their performance is significantly affected by the electronic structure of the Cu site. Theoretical and experimental investigations verify that the conjugated effect of ─OCH3 and ─Br groups lowers the highest occupied molecular orbital (HOMO)–lowest unoccupied molecular orbitals (LUMO) gap of Cu─T(OMe)PP and Cu─TBrPP, promoting faster electron transfer between Cu and CO2, thereby improving their e-CO2RR activity. Moreover, the high inductive effect of ─Br group reduces the electron density of Cu active site of Cu─TBrPP, facilitating the hydrolysis of the bound H2O and thus creating a preferable local microenvironment, further enhancing the catalytic performance. This work provides new insights into the relationships between the substituent group characteristics with e-CO2RR performance and is highly instructive for the design of efficient Cu-based e-CO2RR electrocatalysts.
KW - Cu porphyrin electrocatalysts
KW - conjugated effect
KW - electronic effect
KW - inductive effect CO reduction reaction
UR - http://www.scopus.com/inward/record.url?scp=85169662714&partnerID=8YFLogxK
U2 - 10.1002/smll.202304998
DO - 10.1002/smll.202304998
M3 - 文章
C2 - 37670222
AN - SCOPUS:85169662714
SN - 1613-6810
VL - 20
JO - Small
JF - Small
IS - 2
M1 - 2304998
ER -