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Catalytic Mechanisms and Design Principles for Single-Atom Catalysts in Highly Efficient CO_2 Conversion

机译:高效CO_2转化单原子催化剂的催化机理和设计原理。

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摘要

Direct conversion of CO2 into carbon-neutral fuels or industrial chemicals holds a great promise for renewable energy storage and mitigation of greenhouse gas emission. However, experimentally finding an electrocatalyst for specific final products with high efficiency and high selectivity poses serious challenges due to multiple electron transfer, complicated intermediates, and numerous reaction pathways in electrocatalytic CO2 reduction. Here, an intrinsic descriptor that correlates the catalytic activity with the topological, bonding, and electronic structures of catalytic centers on M-N-C based single-atom catalysts is discovered. The "volcano"-shaped relationships between the descriptor and catalytic activity are established from which the best single-atom catalysts for CO2 reduction are found. Moreover, the reaction mechanisms, intermediates, reaction pathways, and final products can also be distinguished by this new descriptor. The descriptor can also be used to predict the activity of the single-atom catalysts for electrochemical reactions such as hydrogen evolution, oxygen reduction and evolution reactions in fuel cells and water-splitting. These predictions are confirmed by the experimental results for onset potential and Faraday efficiency. The design principles derived from the descriptors open a door for rational design and rapid screening of highly efficient electrocatalysts for CO2 conversion as well as other electrochemical energy systems.
机译:将二氧化碳直接转化为碳中性燃料或工业化学品,对可再生能源的储存和减少温室气体的排放有着广阔的前景。然而,由于多次电子转移,复杂的中间体以及电催化CO 2还原中的许多反应途径,实验上找到高效和高选择性的特定最终产物的电催化剂提出了严峻的挑战。在这里,发现了一个固有的描述符,该描述符将催化活性与基于M-N-C的单原子催化剂上催化中心的拓扑,键和电子结构相关联。建立了描述符和催化活性之间的“火山”形关系,从中发现了最佳的单原子催化剂以减少CO2。而且,反应机理,中间产物,反应途径和最终产物也可以通过该新的描述符来区分。该描述符还可以用于预测单原子催化剂在电化学反应中的活性,例如电化学反应在燃料电池中的析氢,氧还原和析出反应以及水分解。这些预言已被实验结果证实,它们具有爆发电位和法拉第效率。从描述符中得出的设计原理为合理设计和快速筛选用于转化CO2的高效电催化剂以及其他电化学能源系统打开了一扇门。

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