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Facile and Cost Effective Synthesis of Oxide-Derived Silver Catalyst Electrodes via Chemical Solution Deposition for CO2 Electro-Reduction : Facile and Cost Effective Synthesis of Oxide-Derived Silver Catalyst Electrodes via Chemical Solution Deposition for CO<sub>2</sub> Electro-Reduction

Cited 8 time in Web of Science Cited 9 time in Scopus
Authors

Nursanto, Eduardus Budi; Won, Da Hye; Jee, Michael Shincheon; Kim, Haeri; Kim, Nak-Kyoon; Jung, Kwang Deog; Hwang, Yun Jeong; Min, Byoung Koun

Issue Date
2018-05
Publisher
Baltzer Science Publishers B.V.
Citation
Topics in Catalysis, Vol.61 No.5-6, pp.389-396
Abstract
Electrochemical CO2 reduction to useful fuels is a promising strategy for the sustainable energy production. However, because CO2 reduction reaction involves sluggish kinetics, the development of high performing catalyst is a first priority for the success in this system. Herein, cost effective fabrication of oxide-derived silver catalyst for CO2 electro-reduction was successfully prepared by simple chemical solution deposition involving the following steps: (i) spin-coating of precursor solution, (ii) oxidation by air-annealing, and (iii) electrochemical reduction. The prepared silver catalyst achieved 83.7% of CO Faradaic efficiency at - 1.19 V-RHE with an outstanding mass activity of 465.04 A g(-1) which was originated from the unique features of the catalyst as well as precursor solution. With the introduced fabrication method, the precursor solution containing relatively low silver concentration was preferred to form small silver particles, resulting in high catalytic activity. We anticipate the developed method to be widely applied for the preparation of oxide-derived metal catalysts and metal alloy nanostructured catalysts in advanced CO2 conversion system.
ISSN
1022-5528
URI
https://hdl.handle.net/10371/218497
DOI
https://doi.org/10.1007/s11244-017-0870-5
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  • College of Natural Sciences
  • Department of Chemistry
Research Area Artificial Photosynthesis, Electrochemical CO2 Utilization, Solar to chemical conversion device, 인공 광합성, 전기화학적 CO 2 활용, 태양광을 화학으로 변환하는 장치

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