脱氢
乙烯
选择性
吸附
解吸
材料科学
电解
碳氢化合物
密度泛函理论
阳极
氧化物
产量(工程)
电子结构
无机化学
电化学
红外光谱学
化学
光化学
环氧乙烷
电极
化学工程
费米能级
光谱学
红外线的
热脱附光谱法
物理化学
催化作用
作者
Hongjuan Tao,Yan Chen,Suting He,Benchi Chen,Zhibo Shang,Zilin Ma,Xueming Liu,Liyuan Chai,Li Zhang
摘要
ABSTRACT Electrochemical oxidative dehydrogenation (ODH) of ethane in solid oxide electrolysis cells (SOECs) offers an energy‐efficient route to ethylene but faces a trade‐off between conversion and selectivity due to over‐oxidation. Conventional voltage–current regulation can suppress deep oxidation but inevitably compromises ethane conversion. Here, we engineer surface electronic structures by depositing a V 2 O 5 layer on SrFe 0.9 Ti 0.1 O 3−δ (STF), introducing intrinsic O 2p (‐1.33 eV) and V 3d (‐0.18 eV) states closer to the Fermi level than in STF (‐1.49/‐4.52 eV). Density functional theory and operando infrared spectroscopy reveal three synergistic effects: enhanced ethane adsorption (Δ E ads ‐0.33 vs. ‐0.11 eV), reduced first dehydrogenation barrier (Δ G 1 1.13 vs. 1.15 eV), and promoted ethylene desorption ((Δ G des ‐Δ G 3 ) ‐4.98 vs. ‐1.92 eV). The optimized anode delivers 65% yield and 90% selectivity at 750°C, exceeding unmodified STF by 10%. This work highlights band‐center engineering as a promising design concept for regulating hydrocarbon electrode reactions.
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