电解
合成气
材料科学
电化学
化学工程
阴极
催化作用
氧化物
电流密度
无机化学
钙钛矿(结构)
聚合物电解质膜电解
碳纤维
电极
电解质
电解槽
分解
电催化剂
氧化铁
选择性
二氧化碳重整
电解法
傅里叶变换红外光谱
阳极
作者
Houfu Lv,Y Han,Yunfan Fu,Minghao Ma,Yi Shen,Haolin Liu,Hongyun Zhao,Chaobin Zeng,Heng Zheng,Ding Ma,Guoxiong Wang,Xinhe Bao
摘要
ABSTRACT CO2 electrolysis in solid oxide electrolysis cells (SOECs) holds promise for renewable energy storage and carbon recycling. However, current catalysts used in SOECs show decent electrochemical performance but limited CO2 conversion. Here, in situ exsolution process of the confined RuFe nanoparticles anchored on La0.6Sr0.4Fe0.95Ru0.05O3−δ perovskite (RuFe/LSFRu) was revealed, and SOEC using RuFe/LSFRu as cathode shows a current density of 2.75 A cm−2 and a CO2 conversion of 83.4% for direct CO2 electrolysis. Furthermore, the ethane-intensified SOEC employing RuFe/LSFRu cathode achieves ethane and CO2 conversion of over 95% (CO2/C2H6 = 4) and syngas production of 0.91 L h−1 cm−2 by integrating dry ethane reforming process with the reverse water-gas shift and electrolysis reactions. In situ electrochemical diffuse reflectance infrared Fourier transform spectroscopy and density functional theory calculations reveal that the decomposition of OH* species to produce H2 under the electric ‘driving force’ is crucial to the increase in H2 selectivity and CO2 conversion. These results highlight the superiority of RuFe/LSFRu as bi-functional catalyst for direct and ethane-intensified CO2 electrolysis in SOECs.
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