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Carbon-Supported Single Atom Catalysts for Electrochemical Energy Conversion and Storage

机译:碳载单原子催化剂,用于电化学能量转换和存储

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摘要

Single atoms of select transition metals supported on carbon substrates have emerged as a unique system for electrocatalysis because of maximal atom utilization (approximate to 100%) and high efficiency for a range of reactions involved in electrochemical energy conversion and storage, such as the oxygen reduction, oxygen evolution, hydrogen evolution, and CO2 reduction reactions. Herein, the leading strategies for the preparation of single atom catalysts are summarized, and the electrocatalytic performance of the resulting samples for the various reactions is discussed. In general, the carbon substrate not only provides a stabilizing matrix for the metal atoms, but also impacts the electronic density of the metal atoms due to strong interfacial interactions, which may lead to the formation of additional active sites by the adjacent carbon atoms and hence enhanced electrocatalytic activity. This necessitates a detailed understanding of the material structures at the atomic level, a critical step in the construction of a relevant structural model for theoretical simulations and calculations. Finally, a perspective is included highlighting the promises and challenges for the future development of carbon-supported single atom catalysts in electrocatalysis.
机译:碳载体上负载的特定过渡金属的单原子已成为一种独特的电催化系统,这是因为最大的原子利用率(约100%)以及在电化学能量转换和存储(如氧还原)中涉及的一系列反应的高效率,氧气释放,氢气释放和CO2还原反应。在此,总结了制备单原子催化剂的主要策略,并讨论了所得样品对各种反应的电催化性能。通常,碳基质不仅为金属原子提供了稳定的基质,而且由于强烈的界面相互作用还影响了金属原子的电子密度,这可能导致相邻碳原子形成额外的活性位点,因此增强的电催化活性。这需要在原子水平上对材料结构进行详细了解,这是构建用于理论模拟和计算的相关结构模型的关键步骤。最后,包括一个视角,突出了电​​催化碳载单原子催化剂未来发展的前景和挑战。

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