Promoting Electrochemical CO2 Reduction to Formate via Sulfur‐Assisted Electrolysis

Author:

Liu Yuhang123,Wei Zhiming4,Su Xiaozhi2,Shi Xiuwen1,Liu Lingyue5,Wang Tianyu1,Xu Xueting1,Zhao Ming1,Zhai Yueming4,Yang Hong Bin1ORCID,Liu Bin67ORCID

Affiliation:

1. School of Materials Science and Engineering Suzhou University of Science and Technology Suzhou 215009 China

2. Shanghai Synchrotron Radiation Facility Zhangjiang Laboratory Shanghai Advanced Research Institute Chinese Academy of Sciences Shanghai 201204 China

3. School of Physical Science & Technology Suzhou University of Science and Technology Suzhou 215009 China

4. The Institute for Advanced Studies Wuhan University Wuhan 430072 China

5. Department of Applied Biology and Chemical Technology The Hong Kong Polytechnic University Hung Hom, Kowloon Hong Kong 100872 China

6. Department of Materials Science and Engineering City University of Hong Kong Tat Chee Avenue, Kowloon Hong Kong SAR 999007 China

7. Department of Chemistry Hong Kong Institute of Clean Energy (HKICE) & Center of Super‐Diamond and Advanced Films (COSDAF) City University of Hong Kong Hong Kong SAR 999077 China

Abstract

AbstractElectrochemical CO2 reduction reaction (CO2RR) provides a renewable approach to transform CO2 to produce chemicals and fuels. Unfortunately, it faces the challenges of sluggish CO2 activation and slow water dissociation. This study reports the modification of Bi‐based electrocatalyst by S, which leads to a remarkable enhancement in activity and selectivity during electrochemical CO2 reduction to formate. Based on comprehensive in situ examinations and kinetic evaluations, it is observed that the presence of S species over Bi catalyst can significantly enhance its interaction with K+(H2O)n, facilitating fast dissociation of water molecules to generate protons. Further in situ attenuated total reflectance surface‐enhanced infrared absorption spectroscopy (ATR‐SEIRAS) and in situ Raman spectroscopy measurements reveal that S modification is able to decrease the oxidation state of Bi active site, which can effectively enhance CO2 activation and facilitate HCOO* intermediate formation while suppressing competing hydrogen evolution reaction. Consequently, the S‐modified Bi catalyst achieves impressive electrochemical CO2RR performance, reaching a formate Faradaic efficiency (FEformate) of 91.2% at a formate partial current density of ≈135 mA cm−2 and a potential of −0.8 V versus RHE in an alkaline electrolyte.

Funder

National Natural Science Foundation of China

Publisher

Wiley

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