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From the Cover: Reaction intermediates during operando electrocatalysis identified from full solvent quantum mechanics molecular dynamics

机译:从封面:操作电催化过程中的反应中间体从完全溶剂量子力学中识别出来

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摘要

Electrocatalysis provides a powerful means to selectively transform molecules, but a serious impediment in making rapid progress is the lack of a molecular-based understanding of the reactive mechanisms or intermediates at the electrode–electrolyte interface (EEI). Recent experimental techniques have been developed for operando identification of reaction intermediates using surface infrared (IR) and Raman spectroscopy. However, large noises in the experimental spectrum pose great challenges in resolving the atomistic structures of reactive intermediates. To provide an interpretation of these experimental studies and target for additional studies, we report the results from quantum mechanics molecular dynamics (QM-MD) with explicit consideration of solvent, electrode–electrolyte interface, and applied potential at 298 K, which conceptually resemble the operando experimental condition, leading to a prototype of operando QM-MD (o-QM-MD). With o-QM-MD, we characterize 22 possible reactive intermediates in carbon dioxide reduction reactions (CO2RRs). Furthermore, we report the vibrational density of states (v-DoSs) of these intermediates from two-phase thermodynamic (2PT) analysis. Accordingly, we identify important intermediates such as chemisorbed CO2 (b-CO2), *HOC-COH, *C-CH, and *C-COH in our o-QM-MD likely to explain the experimental spectrum. Indeed, we assign the experimental peak at 1,191 cm−1 to the mode of C-O stretch in *HOC-COH predicted at 1,189 cm−1 and the experimental peak at 1,584 cm−1 to the mode of C-C stretch in *C-COD predicted at 1,581 cm−1. Interestingly, we find that surface ketene (*C=C=O), arising from *HOC-COH dehydration, also shows signals at around 1,584 cm−1, which indicates a nonelectrochemical pathway of hydrocarbon formation at low overpotential and high pH conditions.
机译:电催化提供了一种选择性转化分子的有效手段,但是在快速发展中的一个严重障碍是对电极-电解质界面(EEI)的反应机理或中间体缺乏基于分子的理解。已经开发了用于使用表面红外(IR)和拉曼光谱对反应中间体进行操作鉴定的最新实验技术。然而,实验光谱中的大噪声对解决反应中间体的原子结构提出了巨大挑战。为了提供对这些实验研究的解释并为进一步研究提供目标,我们报告了量子力学分子动力学(QM-MD)的结果,其中明确考虑了溶剂,电极与电解质的界面以及298 K时的施加电势,从概念上讲类似于操作性实验条件,导致操作性QM-MD( o -QM-MD)。使用 o -QM-MD,我们可以表征22二氧化碳还原反应中可能的反应性中间体(<数学xmlns:mml =“ http://www.w3.org/1998/Math/MathML” id =“ i3”> C O 2 RRs)。此外,我们报告了状态的振动密度( v C O 2 b - < mi mathvariant =“ normal”> C O 2 ),* HOC-COH,* C-CH和* C-COH在我们的 o -QM-MD可能解释了实验光谱。实际上,我们将实验峰在1,191 cm -1 分配给了* HOC-COH中在1,189 cm -1 预测的CO拉伸模式和实验峰在1,584 cm的模式 -1 到* C-COD中CC拉伸模式预测为1,581 cm -1 。有趣的是,我们发现,由* HOC-COH脱水引起的表面烯酮(* C = C = O)也在约1,584 cm -1 处显示信号,这表明在低过电位和高pH条件。

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