Strengthening the Synergy between Oxygen Vacancies in Electrocatalysts for Efficient Glycerol Electrooxidation

Author:

Wu Liyun1,Wu Qilong2,Han Yun3,Zhang Dongdong1,Zhang Rongrong1,Song Nan1,Wu Xiaofeng4,Zeng Jianrong45,Yuan Pei6,Chen Jun2,Du Aijun7,Huang KeKe1,Yao Xiangdong18ORCID

Affiliation:

1. State Key Laboratory of Inorganic Synthesis and Preparative Chemistry College of Chemistry Jilin University Changchun 130012 P. R. China

2. Intelligent Polymer Research Institute and ARC Centre of Excellence for Electromaterials Science Australian Institute for Innovative Materials University of Wollongong Wollongong NSW 2500 Australia

3. School of Engineering and Built Environment Queensland Micro‐ and Nanotechnology Centre Griffith University Nathan Campus Queensland 4111 Australia

4. Shanghai Synchrotron Radiation Facility Shanghai Advanced Research Institute Chinese Academy of Sciences Shanghai 201204 P. R. China

5. Shanghai Institute of Applied Physics Chinese Academy of Sciences Shanghai 201800 P. R. China

6. College of Materials Science and Engineering Fuzhou University Fuzhou 350002 P. R. China

7. School of Chemistry and Physics and Centre for Materials Science Queensland University of Technology Gardens Point Campus Brisbane 4001 Australia

8. School of Advanced Energy and IGCME Sun Yat‐Sen University (Shenzhen) Shenzhen Guangdong 518107 P. R. China

Abstract

AbstractDefect‐engineered bimetallic oxides exhibit high potential for the electrolysis of small organic molecules. However, the ambiguity in the relationship between the defect density and electrocatalytic performance makes it challenging to control the final products of multi‐step multi‐electron reactions in such electrocatalytic systems. In this study, controllable kinetics reduction is used to maximize the oxygen vacancy density of a Cu─Co oxide nanosheet (CuCo2O4 NS), which is used to catalyze the glycerol electrooxidation reaction (GOR). The CuCo2O4−x NS with the highest oxygen‐vacancy density (CuCo2O4−x‐2) oxidizes C3 molecules to C1 molecules with selectivity of almost 100% and a Faradaic efficiency of ≈99%, showing the best oxidation performance among all the modified catalysts. Systems with multiple oxygen vacancies in close proximity to each other synergistically facilitate the cleavage of C─C bonds. Density functional theory calculations confirm the ability of closely spaced oxygen vacancies to facilitate charge transfer between the catalyst and several key glycolic‐acid (GCA) intermediates of the GOR process, thereby facilitating the decomposition of C2 intermediates to C1 molecules. This study reveals qualitatively in tuning the density of oxygen vacancies for altering the reaction pathway of GOR by the synergistic effects of spatial proximity of high‐density oxygen vacancies.

Funder

Ministry of Science and Technology

Australian Research Council

Publisher

Wiley

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