化学
选择性
催化作用
电合成
电化学
化学工程
X射线吸收光谱法
无机化学
制氢
氢
电催化剂
多相催化
红外光谱学
分解水
可逆氢电极
碳纤维
吸收(声学)
电极
电解水
原位
工作温度
吸收光谱法
合金
作者
Y G Li,Qixin Yuan,Xiang Lyu,Juan D. Jiménez,Dali Yang,Lu Ma,Xiaoxuan Yang,Jianchun Jiang,Alexey Serov,Mengmeng Fan,Jingjie Wu
摘要
High Resolution Image Download MS PowerPoint Slide Electrochemical reduction of CO 2 to CO is a key step in carbon utilization technologies, yet maintaining high CO selectivity under elevated temperatures relevant to industrial membrane-electrode-assembly (MEA) electrolyzers remains challenging due to the competing hydrogen evolution reaction (HER). Additionally, the temperature dependence of CO selectivity on Cu-based catalysts has remained largely unexplored. Here, we demonstrate that incorporating atomic In or Sn into Cu fundamentally reshapes the selectivity of Cu catalysts at elevated temperatures. Dilute alloy catalysts, In 1 Cu and Sn 1 Cu, achieve >95% FE of CO over a broad current-density window (0.1–1.1 A cm –2 ) at 60 °C in MEA electrolyzers, far exceeding their performance at ambient temperature. In situ attenuated total reflection surface-enhanced infrared absorption spectroscopy suggests that elevating temperature depletes interfacial water activity, which favors a shift in CO 2 activation from a proton-coupled *COOH pathway toward an electron-driven *COO – -associated pathway, while also suppressing HER and CO hydrogenation. In contrast, benchmark CO-selective catalysts such as Ag exhibit minimal temperature-induced changes in CO production at 20–60 °C. These findings identify temperature as an unavoidable yet previously underutilized operating parameter in MEA electrolyzers for high-rate, selective CO production on Cu-based catalysts.
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