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Operando spectroscopy study of the carbon dioxide electro-reduction by iron species on nitrogen-doped carbon

机译:铁掺杂氮掺杂碳电还原二氧化碳的操作光谱研究

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摘要

The carbon–carbon coupling via electrochemical reduction of carbon dioxide represents the biggest challenge for using this route as platform for chemicals synthesis. Here we show that nanostructured iron (III) oxyhydroxide on nitrogen-doped carbon enables high Faraday efficiency (97.4%) and selectivity to acetic acid (61%) at very-low potential (−0.5 V vs silver/silver chloride). Using a combination of electron microscopy, operando X-ray spectroscopy techniques and density functional theory simulations, we correlate the activity to acetic acid at this potential to the formation of nitrogen-coordinated iron (II) sites as single atoms or polyatomic species at the interface between iron oxyhydroxide and the nitrogen-doped carbon. The evolution of hydrogen is correlated to the formation of metallic iron and observed as dominant reaction path over iron oxyhydroxide on oxygen-doped carbon in the overall range of negative potential investigated, whereas over iron oxyhydroxide on nitrogen-doped carbon it becomes important only at more negative potentials.
机译:通过二氧化碳的电化学还原进行碳-碳偶联代表了使用该途径作为化学合成平台的最大挑战。在这里,我们表明,在氮掺杂碳上的纳米结构羟基氧化铁(III)能够在非常低的电位(相对于银/氯化银为-0.5 V)下实现高法拉第效率(97.4%)和对乙酸的选择性(61%)。通过结合使用电子显微镜,操作X射线光谱技术和密度泛函理论模拟,我们将在此电位下对乙酸的活性与界面上形成单原子或多原子物种的氮配位铁(II)位点相关联。介于羟基氧化铁和氮掺杂碳之间。氢的逸出与金属铁的形成有关,并且在整个负电势范围内观察到它是氢氧化铁在氧掺杂碳上的主要反应路径,而氢氧铁在氮掺杂碳上的重要反应路径仅在负电位。

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