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Reaction pathways for the highly selective and durable electrochemical CO2 to CO conversion on ZnO supported Ag nanoparticles in KCl electrolyte
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Reaction pathways for the highly selective and durable electrochemical CO2 to CO conversion on ZnO supported Ag nanoparticles in KCl electrolyte

Dinesh Bhalothia, Da-Wei Lee, Guan-Ping Jhao, Hsiao-Yun Liu, Yanyan Jia, Sheng Dai, Kuan-Wen WangTsan-Yao Chen
Applied Surface Science, 卷.608, 155224
01/2023

摘要

Ag Electrochemical CO2 reduction (ECR) Faradaic efficiency (FE) Nanocatalysts ZnO Chemistry (all) Condensed Matter Physics Physics and Astronomy (all) Surfaces and Interfaces Surfaces Coatings and Films
Electrochemical CO 2 reduction (ECR) is a promising approach for recycling atmospheric CO 2 into value-added fuels. However, due to the sluggish ECR, highly effective ctalysts are needed. ZnO supported Ag nanocatalyst (NC) ((ZnO) 3 @Ag) is developed for CO 2 to CO conversion where the faradaic efficiency (FE) was ∼95% in 0.5 M KCl at −1.1 V, and that progressively decreased in 0.1 M KCl (89.7%) and 0.1 M KHCO 3 (84.6%). Besides, (ZnO) 3 @Ag NC exhibited unprecedented stability in 0.5 M KCl with only 6.3% decay after 8 h while 14% and 14.3% decay were observed in 0.1 M KCl and 0.1 M KHCO 3 , respectively. The cross-referencing results of materials analyses and in-situ X-ray absorption spectroscopy suggest that the high CO selectivity of (ZnO) 3 @Ag NC in KCl originates from the synergistic collaboration between ZnO and Ag, where, ZnO supplies electrons to Ag for adsorption/structural rearrangement of CO 2 molecule and subsequent desorption of CO. On the other hand, the presence of CO 3 2− ions in KHCO 3 hinder the mass transportation (i.e. the adsorption) of CO 2 , resulting in the decrease in selectivity and stability. Hereby, this study will spark motivation for designing the highly selective and stable ECR catalysts and uncover the mechanistic aspects of ECR.

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