TY - JOUR
T1 - Artificial Frustrated Lewis Pairs for Ampere-Level Ammonia Synthesis and High-Power-Density Zinc-Nitrate Battery
AU - Zhang, Shaoce
AU - Chen, Dong
AU - Zhang, Rong
AU - Yang, Xinru
AU - Ma, Xintao
AU - Li, Chuan
AU - Cui, Huilin
AU - Wei, Zhiquan
AU - Wang, Yiqiao
AU - Chen, Peng
AU - Guo, Xun
AU - Wang, Shixun
AU - Ho, Johnny C.
AU - Guo, Ying
AU - Zhi, Chunyi
N1 - Publisher Copyright:
© 2025 American Chemical Society
PY - 2025/11/12
Y1 - 2025/11/12
N2 - Cu-based electrocatalysts exhibit superior reduction kinetics in the electrochemical nitrate reduction reaction (NO3RR) and suppress competing hydrogen evolution reaction, making NO3RR an alternative to the traditional Haber–Bosch process in NH3production. However, the NO3RR in NH3production involves a nine-proton and eight-electron process, and its performance is constrained by the poor capacity to generate protons. In this study, frustrated Lewis pairs (FLPs) were introduced into Cu-based catalysts to create La-doped Cu2O, in which the FLPs [Cu–O–La–Ov] (where v denotes vacancy) formed by the Lewis acidic sites Ovand Lewis basic sites O in the Cu–O–La motif served as active sites. These active sites facilitated H2O dissociation, providing ample protons for the NO3RR hydrogenation. The La9–CuOxcatalyst exhibited an ultralow NH3production overpotential of only 290 mV, achieving an NH3current density of 1.76 A cm–2at −0.4 V vs the reversible hydrogen electrode, with an NH3yield rate of 139.5 mg h–1cm–2and Faradaic efficiency of 98.9%. Due to the superior NO3RR performance of La9–CuOx, a La9–CuOx-based Zn-NO3–battery achieved a remarkable power density of 80.6 mW cm–2, with an NH3yield rate of 21.4 mg h–1cm–2. This study clarifies the role of FLPs in facilitating the NO3RR and achieves an efficient Zn-NO3–battery to accomplish electricity generation and NH3production simultaneously.
AB - Cu-based electrocatalysts exhibit superior reduction kinetics in the electrochemical nitrate reduction reaction (NO3RR) and suppress competing hydrogen evolution reaction, making NO3RR an alternative to the traditional Haber–Bosch process in NH3production. However, the NO3RR in NH3production involves a nine-proton and eight-electron process, and its performance is constrained by the poor capacity to generate protons. In this study, frustrated Lewis pairs (FLPs) were introduced into Cu-based catalysts to create La-doped Cu2O, in which the FLPs [Cu–O–La–Ov] (where v denotes vacancy) formed by the Lewis acidic sites Ovand Lewis basic sites O in the Cu–O–La motif served as active sites. These active sites facilitated H2O dissociation, providing ample protons for the NO3RR hydrogenation. The La9–CuOxcatalyst exhibited an ultralow NH3production overpotential of only 290 mV, achieving an NH3current density of 1.76 A cm–2at −0.4 V vs the reversible hydrogen electrode, with an NH3yield rate of 139.5 mg h–1cm–2and Faradaic efficiency of 98.9%. Due to the superior NO3RR performance of La9–CuOx, a La9–CuOx-based Zn-NO3–battery achieved a remarkable power density of 80.6 mW cm–2, with an NH3yield rate of 21.4 mg h–1cm–2. This study clarifies the role of FLPs in facilitating the NO3RR and achieves an efficient Zn-NO3–battery to accomplish electricity generation and NH3production simultaneously.
UR - https://www.scopus.com/pages/publications/105021353688
U2 - 10.1021/jacs.5c11084
DO - 10.1021/jacs.5c11084
M3 - 文章
C2 - 41159904
AN - SCOPUS:105021353688
SN - 0002-7863
VL - 147
SP - 41433
EP - 41442
JO - Journal of the American Chemical Society
JF - Journal of the American Chemical Society
IS - 45
ER -