Trimetallic Oxide Electrocatalyst for Enhanced Redox Activity in Zinc–Air Batteries Evaluated by In Situ Analysis

Author:

Kumar Ramasamy Santhosh1,Mannu Pandian2,Prabhakaran Sampath3,Nga Ta Thi Thuy2,Kim Yangsoo4,Kim Do Hwan15,Chen Jeng‐Lung6,Dong Chung‐Li2,Yoo Dong Jin17ORCID

Affiliation:

1. Department of Energy Storage/Conversion Engineering of Graduate School (BK21 FOUR) Hydrogen and Fuel Cell Research Center Jeonbuk National University Jeonju Jeollabuk‐do 54896 Republic of Korea

2. Research Center for X‐ray Science Department of Physics Tamkang University Tamsui 25137 Taiwan

3. Department of Nano Convergence Engineering Jeonbuk National University Jeonju Jeonbuk 54896 Republic of Korea

4. Korea Basic Science Institute Jeonju Center Jeonju‐si Jeollabuk‐do 54896 Republic of Korea

5. Division of Science Education and Institute of Fusion Science Jeonbuk National University Jeonju Jeollabuk‐do 54896 Republic of Korea

6. National Synchrotron Radiation Research Center Hsinchu 30076 Taiwan

7. Department of Life Science Jeonbuk National University Jeonju‐si Jeollabuk‐do 54896 Republic of Korea

Abstract

AbstractResearchers are investigating innovative composite materials for renewable energy and energy storage systems. The major goals of this studies are i) to develop a low‐cost and stable trimetallic oxide catalyst and ii) to change the electrical environment of the active sites through site‐selective Mo substitution. The effect of Mo on NiCoMoO4 is elucidated using both in situ X‐ray absorption spectroscopy and X‐ray diffraction analysis. Also, density functional theory strategies show that NiCoMoO4 has extraordinary catalytic redox activity because of the high adsorption energy of the Mo atom on the active crystal plane. Further, it is demonstrated that hierarchical nanoflower structures of NiCoMoO4 on reduced graphene oxide can be employed as a powerful bifunctional electrocatalyst for oxygen reduction/evolution reactions in alkaline solutions, providing a small overpotential difference of 0.75 V. Also, Zn–air batteries based on the developed bifunctional electrocatalyst exhibit outstanding cycling stability and a high‐power density of 125.1 mW cm−2. This work encourages the use of Zn–air batteries in practical applications and provides an interesting concept for designing a bifunctional electrocatalyst.

Funder

National Research Foundation of Korea

Publisher

Wiley

Subject

General Physics and Astronomy,General Engineering,Biochemistry, Genetics and Molecular Biology (miscellaneous),General Materials Science,General Chemical Engineering,Medicine (miscellaneous)

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