TY - JOUR
T1 - Bimetallic self-supported AuCu alloy aerogel with abundant diffusion channels for regulating oxygen reduction reaction by electronic structure modulation for zinc-air battery application
AU - Yuan, Ke
AU - Zheng, Yalei
AU - Zhao, Yihe
AU - Liu, Liu
AU - Altaf, Aleeza
AU - Chen, Yanan
AU - Wang, Anquan
AU - Wu, Xiaodong
AU - Cui, Sheng
N1 - Publisher Copyright:
© 2025 Elsevier B.V.
PY - 2025/2/1
Y1 - 2025/2/1
N2 - The Noble Gold (Au) has great potential for application in the field of electrocatalysis due to its excellent catalytic activity and stability. However, the high cost, scarcity, and the too-weak binding strength, greatly limit its wide application in the oxygen reduction reaction (ORR) field. Herein, we have developed a low-cost and mild reducing agent for Au2Cu alloy aerogel electrocatalyst fabrication by self-assembly combined with a freeze-drying technique. The obtained aerogel exhibits a “pearl-like” hierarchical porous structure with abundant diffusion channels, which benefits O2 diffusion and full exposure of active sites. It is worth mentioning that the optimized Au2Cu alloy aerogel electrocatalyst exhibits a large half-wave potential of 0.85 V vs. RHE, a large kinetic current density of 5.3 mA·cm−2, excellent durability, and methanol poisoning resistance. The Koutecky-Levich equation and the Rotating Ring-Disk Electrode (RRDE) test further verified the four proton-electron coupling transfer process. It is impressive that the Au2Cu alloy aerogel-based zinc-air batteries exhibit a high open circuit potential (1.48 V), power density (211 mW·cm−2), and almost no attenuation of energy efficiency after a 160 h charge–discharge cycle. As revealed by the d-band center theory, the partially oxidized Au2Cu alloy aerogel promotes the band center to move away from the Fermi level, and the anti-bond energy level of the adsorbate decreases with more electrons occupied, therefore decreasing the binding strength of the adsorbed *OOH intermediate, which is responsible for the enhanced ORR activity. This work opens up an effective method for exploring aerogel-based green electrocatalysts in energy development and storage.
AB - The Noble Gold (Au) has great potential for application in the field of electrocatalysis due to its excellent catalytic activity and stability. However, the high cost, scarcity, and the too-weak binding strength, greatly limit its wide application in the oxygen reduction reaction (ORR) field. Herein, we have developed a low-cost and mild reducing agent for Au2Cu alloy aerogel electrocatalyst fabrication by self-assembly combined with a freeze-drying technique. The obtained aerogel exhibits a “pearl-like” hierarchical porous structure with abundant diffusion channels, which benefits O2 diffusion and full exposure of active sites. It is worth mentioning that the optimized Au2Cu alloy aerogel electrocatalyst exhibits a large half-wave potential of 0.85 V vs. RHE, a large kinetic current density of 5.3 mA·cm−2, excellent durability, and methanol poisoning resistance. The Koutecky-Levich equation and the Rotating Ring-Disk Electrode (RRDE) test further verified the four proton-electron coupling transfer process. It is impressive that the Au2Cu alloy aerogel-based zinc-air batteries exhibit a high open circuit potential (1.48 V), power density (211 mW·cm−2), and almost no attenuation of energy efficiency after a 160 h charge–discharge cycle. As revealed by the d-band center theory, the partially oxidized Au2Cu alloy aerogel promotes the band center to move away from the Fermi level, and the anti-bond energy level of the adsorbate decreases with more electrons occupied, therefore decreasing the binding strength of the adsorbed *OOH intermediate, which is responsible for the enhanced ORR activity. This work opens up an effective method for exploring aerogel-based green electrocatalysts in energy development and storage.
KW - Aerogel
KW - Alloy
KW - Electrocatalysis
KW - Oxygen reduction reaction
KW - Porous
UR - http://www.scopus.com/inward/record.url?scp=85215790031&partnerID=8YFLogxK
U2 - 10.1016/j.cej.2025.159930
DO - 10.1016/j.cej.2025.159930
M3 - 文章
AN - SCOPUS:85215790031
SN - 1385-8947
VL - 505
JO - Chemical Engineering Journal
JF - Chemical Engineering Journal
M1 - 159930
ER -