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Potential-Dependent Competitive Electroreduction of CO2 into CO and Formate on Cu(111) from an Improved H Coverage-Dependent Electrochemical Model with Explicit Solvent Effect

机译:通过具有明确溶剂效应的改进的H覆盖依赖性电化学模型,CO2的潜在依赖性竞争电力CO与Cu(111)和甲酸(111)。具有明确的溶剂效应

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An improved density functional theory-based H coverage-dependent electrochemical model with explicit solvent effect is proposed for Cu(111), which is used to identify potential-dependent initial competitive CO_(2) electroreduction pathways considering HER. We find that a chemisorbed CO_(2) molecule at the present electrode/aqueous interface can be spontaneously formed and the overpotentials can affect its coordination pattern. The Eley–Rideal mechanism may be more favorable during the initial CO_(2) electroreduction into CO, whereas chemisorbed CO_(2) reacting with adsorbed H into HCOO~(–) via the Langmuir–Hinshelwood mechanism is more facile to occur. The analyses of energetics suggest that the low overpotentials have a negligible influence on CO and HCOO~(–) formation, and HCOO~(–) species with monodentate and bidentate configurations may also parallelly form with the surmountable barriers at room temperature. However, the high potentials have an interruptive effect on initial CO_(2) electroreduction because of the significantly increased barriers, indicating that the chemisorbed CO_(2) can be stabilized by imposing more negative potentials and thus going against initial CO_(2) electroreduction. By analyzing the competing HER with initial CO_(2) electroreduction into CO, we find that HER is competitive with initial CO formation because of the required lower overpotentials. Simultaneously, the present study shows that the blocked Cu surface by adsorbed H and CO can explain why the initial CO formation pathway is unfavorable at the high overpotentials. Our present conclusions can also confirm the previous experimental report on initial formation of CO and HCOO~(–).
机译:提出了一种具有明确溶剂效应的基于基于密度函数理论的H覆盖依赖性电化学模型,用于鉴定考虑她的潜在依赖性初始竞争性CO_(2)电吞噬途径。我们发现可以自发地形成本电极/水界面处的化学用CO_(2)分子,并且过电位可以影响其协调图案。在初始CO_(2)电导过程中,ELEY-TINEAL机构可以更有利地进入CO,而通过Langmuir-Hinshelwood机制将其与HCOO〜( - )反应的化学用CO_(2)是更容易发生的。精力学的分析表明,低过电位对CO和HCOO〜( - )形成具有可忽略不计的影响,HCOO〜( - )具有单齿和二齿配置的物种也可能与室温下可移动的屏障并行形成。然而,由于屏障显着增加,高电位对初始CO_(2)电荷有中断影响,表明通过施加更多的负电位并反对初始CO_(2)电诊断,可以稳定化学吸附的CO_(2)。通过将竞争对手的竞争对手分析到CO中的初始CO_(2),我们发现她与初始CO形成具有竞争力,因为所需的下部过度呈现。同时,本研究表明,通过吸附的H和CO的封端Cu表面可以解释为什么初始CO形成途径在高流通枢纽中是不利的。我们的结论还可以确认关于CO和HCOO〜( - )初始形成的先前实验报告。

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    《ACS Omega》 |2020年第22期|共10页
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    Lihui Ou; Zixi He;

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