4.7 Article

Room Temperature Nanographene Production via CO2 Electrochemical Reduction on the Electrodeposited Bi on Sn Substrate

期刊

NANOMATERIALS
卷 12, 期 19, 页码 -

出版社

MDPI
DOI: 10.3390/nano12193389

关键词

electrochemical reduction of CO2; Bi; Sn electrode; graphene

资金

  1. Rachadapisek Sompote Endowment Fund for the Postdoctoral Fellowship, Chulalongkorn University
  2. MalaysiaThailand Joint Authority (MTJA) Research Cess Fund project
  3. National Research Council of Thailand (NRCT) Research Team Promotion grant
  4. JSPS [JPJSCCB20210004]
  5. e-Asia Joint Research Program

向作者/读者索取更多资源

The synthesis of polycrystalline nanographene through CO2RR at room temperature has been achieved in this study. The morphology of the electrodeposited Bi/Sn electrocatalysts did not have significant influence on the final structure of the solid carbon products formed. The Bi-graphene composites produced show high potential in electrochemical sensor-related applications.
Electrochemical reduction of carbon dioxide (CO2RR) to crystalline solid carbon at room temperature is challenging, but it is a providential CO2 utilization route due to its indefinite storage and potential applications of its products in many advanced technologies. Here, room-temperature synthesis of polycrystalline nanographene was achieved by CO2RR over the electrodeposited Bi on Sn substrate prepared with various bismuth concentrations (0.01 M, 0.05 M, and 0.1 M). The solid carbon products were solely produced on all the prepared electrodes at the applied potential -1.1 V vs. Ag/AgCl and were characterized as polycrystalline nanographene with an average domain size of ca. 3-4 nm. The morphology of the electrodeposited Bi/Sn electrocatalysts did not have much effect on the final structure of the solid carbon products formed but rather affected the CO2 electroreduction activity. The optimized negative potential for the formation of nanographene products on the 0.05Bi/Sn was ca. -1.5 V vs. Ag/AgCl. Increasing the negative value of the applied potential accelerated the agglomeration of the highly reactive nascent Bi clusters in situ formed under the reaction conditions, which, as a consequence, resulted in a slight deviation of the product selectivity toward gaseous CO and H-2 evolution reaction. The Bi-graphene composites produced by this method show high potential as an additive for working electrode modification in electrochemical sensor-related applications.

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