4.7 Article

A low crystallinity CuO-SnO2/C catalyst for efficient electrocatalytic reduction of CO2

Journal

JOURNAL OF ELECTROANALYTICAL CHEMISTRY
Volume 928, Issue -, Pages -

Publisher

ELSEVIER SCIENCE SA
DOI: 10.1016/j.jelechem.2022.117089

Keywords

Carbon dioxide reduction; Electrocatalysis; Copper-based catalysts; Tin oxide

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In this study, a low crystallinity CuO-SnO2/C catalyst was synthesized by integrating CuO and SnO2 on carbon black, which exhibited significantly enhanced selectivity, activity, and stability towards the reduction of carbon dioxide. The well-distributed CuO and SnO2 nanoparticles on carbon black resulted in a larger electrochemically active surface area (ECSA) and faster electron transfer capacity, contributing to the enhanced electrocatalytic process. The low crystallinity of CuO on CuO-SnO2/C facilitated the easier electron transfer to the CO2 surface, accelerating the reduction reaction. The obtained CuO-SnO2/C with low crystallinity efficiently catalyzed the reduction of CO2 to formic acid and syngas, with a high Faradaic efficiency (FE) of C1 products (HCOOH + CO) of 80%, and 100% FE can be utilized.
Electrochemical method to convert CO2 into valuable industrial fuel or raw material is an important means to establish a new carbon cycle. However, low selectivity and poor stability of electrocatalysts seriously limited its potential application. In this paper, by the efficient integration of CuO and SnO2 on carbon black (C), a low crystallinity CuO-SnO2/C catalyst was synthesized, which exhibited drastically enhanced selectivity, activity and stability towards carbon dioxide reduction reaction (CO2RR). It is found that CuO and SnO2 nanoparticles are well distributed on carbon black carrier, resulting in larger value of the electrochemically active surface area (ECSA) and faster electron transfer capacity, which contributes to the enhanced electrocatalytic process. Especially, the obviously lower crystallinity of CuO on CuO-SnO2/C is in favor of the easier transfer of electron to CO2 surface to form the intermediate CO2 center dot-, accelerating the reduction reaction. Therefore, as-obtained CuO-SnO2/C with low crystallinity efficiently catalyzes the reduction of CO2 to formic acid and syngas in a facile process, with the highest Faradaic efficiency (FE) of C1 products (HCOOH + CO) of 80 %, and 100 % FE can be utilized. The findings here present a novel way for crystallinity tuning of a material to efficiently manip-ulate its electrocatalytic properties towards CO2RR.

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