TY - JOUR
T1 - Boosting ethanol oxidation by NiOOH-CuO nano-heterostructure for energy-saving hydrogen production and biomass upgrading
AU - Sun, Hainan
AU - Li, Lili
AU - Chen, Yahui
AU - Kim, Hyunseung
AU - Xu, Xiaomin
AU - Guan, Daqin
AU - Hu, Zhiwei
AU - Zhang, Linjuan
AU - Shao, Zongping
AU - Jung, Woo Chul
N1 - Publisher Copyright:
© 2023
PY - 2023/5/15
Y1 - 2023/5/15
N2 - Substituting the anodic oxygen evolution reaction in water electrolysis with a thermodynamically more favorable ethanol oxidation reaction (EOR) provides a promising route for simultaneous biomass upgrading and energy-saving hydrogen production. Herein, we synthesize a NiOOH-CuO nano-heterostructure anchored on a three-dimensional conductive Cu foam, which exhibits remarkable EOR performance, surpassing all the state-of-the-art 3d transition-metal-based EOR electrocatalysts. Density functional theory reveals that the coupling between CuO and NiOOH by charge redistribution at the interface is critical, synergistically reducing the EOR energy barriers into an energetically favorable pathway. Conclusively, the hybrid water electrolysis cell using our catalyst as the anode (1) requires only a low cell voltage for H2 generation at the cathode and only liquid chemical production of acetate at the anode, and (2) shows a high ethanol conversion rate to acetate, which can readily be separated from the aqueous electrolyte by subsequent acidification and extraction processes.
AB - Substituting the anodic oxygen evolution reaction in water electrolysis with a thermodynamically more favorable ethanol oxidation reaction (EOR) provides a promising route for simultaneous biomass upgrading and energy-saving hydrogen production. Herein, we synthesize a NiOOH-CuO nano-heterostructure anchored on a three-dimensional conductive Cu foam, which exhibits remarkable EOR performance, surpassing all the state-of-the-art 3d transition-metal-based EOR electrocatalysts. Density functional theory reveals that the coupling between CuO and NiOOH by charge redistribution at the interface is critical, synergistically reducing the EOR energy barriers into an energetically favorable pathway. Conclusively, the hybrid water electrolysis cell using our catalyst as the anode (1) requires only a low cell voltage for H2 generation at the cathode and only liquid chemical production of acetate at the anode, and (2) shows a high ethanol conversion rate to acetate, which can readily be separated from the aqueous electrolyte by subsequent acidification and extraction processes.
KW - 3d transition metal
KW - Ethanol oxidation reaction
KW - Hydrogen production
KW - Nano-heterostructure
KW - Value-added chemicals
UR - http://www.scopus.com/inward/record.url?scp=85146085471&partnerID=8YFLogxK
U2 - 10.1016/j.apcatb.2023.122388
DO - 10.1016/j.apcatb.2023.122388
M3 - 文章
AN - SCOPUS:85146085471
SN - 0926-3373
VL - 325
JO - Applied Catalysis B: Environmental
JF - Applied Catalysis B: Environmental
M1 - 122388
ER -