双金属片
催化作用
乙醇
化学
还原(数学)
电催化剂
机制(生物学)
化学工程
无机化学
材料科学
电化学
电极
物理化学
有机化学
几何学
哲学
工程类
数学
认识论
作者
Tianxiang Guo,Changxin Ma,Xilai Wang,Zijun Men,B.H. Liu,Alemayehu H. Bedane
出处
期刊:Energy & Fuels
[American Chemical Society]
日期:2025-05-08
卷期号:39 (20): 9532-9545
被引量:8
标识
DOI:10.1021/acs.energyfuels.5c00836
摘要
The electrochemical reduction of CO 2 to high-value C 2 products, particularly ethanol, represents a promising strategy for mitigating greenhouse gas emissions and addressing climate challenges. However, the rational design of efficient electrocatalysts for this process remains hindered by insufficient activity, selectivity, and mechanistic understanding. So, this work developed a hierarchically structured copper–zinc bimetallic catalyst (CuZn-DAT) via a novel potential-step electrodeposition (PSE) method, employing diaminotriazole (DAT) as both a morphology-directing agent and electronic stabilizer. Multimodally comprehensive characterization (BET/SEM/TEM/XRD/EDS/ICP-OES/XPS) revealed a three-dimensional porous architecture with optimized electronic configurations, where Zn alloying narrowed the HOMO–LUMO gap, while DAT coordination suppressed Cu surface reconstruction. Electrochemical evaluations (CV/LSV/EIS/GC/ 1 H NMR) demonstrated exceptional CO 2 -to-ethanol conversion performance, achieving a total Faradaic efficiency (FE) exceeding 75% at current densities above 50 mA cm –2, with ethanol dominating C 2 products at 87% selectivity (FE ethanol = 19.9%). Zn incorporation boosted FE ethanol and partial current density by 325 and 600%, respectively, while subsequent DAT modification further enhanced these metrics by 194 and 292%. Mechanistic studies combined with density functional theory (DFT) calculations identified the accelerated *CO dimerization kinetics and stabilized *CO–CHO intermediates as critical factors. A dominant stepwise reaction pathway of CO 2 -to-ethanol conversion on the CuZn-DAT catalyst was established as CO 2 (g) → *CO 2 → *CO 2 – → *COOH → *CO → *CHO → *CO–CHO → *OHCH 2 CH 3 → CH 3 CH 2 OH (l). This work establishes a dual-modification strategy (Zn alloying + organic stabilization) that advances the development of efficient electrocatalysts for sustainable CO 2 -to-ethanol conversion, providing fundamental insights into C–C coupling mechanisms and catalyst design principles for multicarbon product formation.
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