TY - JOUR
T1 - Boosting CO2 Electroreduction on Bismuth Nanoplates with a Three-Dimensional Nitrogen-Doped Graphene Aerogel Matrix
AU - Jing, Xiao Ting
AU - Zhu, Zhejiaji
AU - Chen, Li Wei
AU - Liu, Di
AU - Huang, Hui Zi
AU - Tian, Wen Jing
AU - Yin, An Xiang
N1 - Publisher Copyright:
© 2023 American Chemical Society.
PY - 2023/4/26
Y1 - 2023/4/26
N2 - Electrochemical CO2 reduction reaction (CO2RR), which uses renewable electricity to produce high-value-added chemicals, offers an alternative clean path to the carbon cycle. However, bismuth-based catalysts show great potential for the conversion of CO2 and water to formate, but their overall efficiency is still hampered by the weak CO2 adsorption, low electrical conductivity, and slow mass transfer of CO2 molecules. Herein, we report that a rationally modulated nitrogen-doped graphene aerogel matrix (NGA) can significantly enhance the CO2RR performance of bismuth nanoplates (BiNPs) by both modulating the electronic structure of bismuth and regulating the interface for chemical reaction and mass transfer environments. In particular, the NGA prepared by reducing graphene oxide (GO) with hydrazine hydrate (denoted as NGAhdrz) exhibits significantly enhanced strong metal-support interaction (SMSI), increased specific surface area, strengthened CO2 adsorption, and modulated wettability. As a result, the Bi/NGAhdrz exhibits significantly boosted CO2RR properties, with a Faradaic efficiency (FE) of 96.4% at a current density of 51.4 mA cm-2 for formate evolution at a potential of −1.0 V versus reversible hydrogen electrode (vs RHE) in aqueous solution under ambient conditions.
AB - Electrochemical CO2 reduction reaction (CO2RR), which uses renewable electricity to produce high-value-added chemicals, offers an alternative clean path to the carbon cycle. However, bismuth-based catalysts show great potential for the conversion of CO2 and water to formate, but their overall efficiency is still hampered by the weak CO2 adsorption, low electrical conductivity, and slow mass transfer of CO2 molecules. Herein, we report that a rationally modulated nitrogen-doped graphene aerogel matrix (NGA) can significantly enhance the CO2RR performance of bismuth nanoplates (BiNPs) by both modulating the electronic structure of bismuth and regulating the interface for chemical reaction and mass transfer environments. In particular, the NGA prepared by reducing graphene oxide (GO) with hydrazine hydrate (denoted as NGAhdrz) exhibits significantly enhanced strong metal-support interaction (SMSI), increased specific surface area, strengthened CO2 adsorption, and modulated wettability. As a result, the Bi/NGAhdrz exhibits significantly boosted CO2RR properties, with a Faradaic efficiency (FE) of 96.4% at a current density of 51.4 mA cm-2 for formate evolution at a potential of −1.0 V versus reversible hydrogen electrode (vs RHE) in aqueous solution under ambient conditions.
KW - CO electroreduction
KW - bismuth
KW - electrocatalysis
KW - nitrogen-doped graphene aerogel
KW - strong metal-support interaction
UR - http://www.scopus.com/inward/record.url?scp=85154032503&partnerID=8YFLogxK
U2 - 10.1021/acsami.3c02578
DO - 10.1021/acsami.3c02578
M3 - Article
C2 - 37057844
AN - SCOPUS:85154032503
SN - 1944-8244
VL - 15
SP - 20317
EP - 20324
JO - ACS applied materials & interfaces
JF - ACS applied materials & interfaces
IS - 16
ER -