Exploring Cu-Doped CoO Bifunctional Oxygen Electrocatalysts for Aqueous Zn-Air Batteries.

ACS Appl Mater Interfaces

Solid State and Structural Chemistry Unit (SSCU), Indian Institute of Science, Bengaluru 560012, India.

Published: April 2024

The efficiency of oxygen electrocatalysis is a key factor in diverse energy domain applications, including the performance of metal-air batteries, such as aqueous Zinc (Zn)-air batteries. We demonstrate here that the doping of cobalt oxide with optimal amounts of copper (abbreviated as Cu-doped CoO) results in a stable and efficient bifunctional electrocatalyst for oxygen reduction (ORR) and evolution (OER) reactions in aqueous Zn-air batteries. At high Cu-doping concentrations (≥5%), phase segregation occurs with the simultaneous presence of CoO and copper oxide (CuO). At Cu-doping concentrations ≤5%, the Cu ion resides in the octahedral (O) site of CoO, as revealed by X-ray diffraction (XRD)/Raman spectroscopy investigations and molecular dynamics (MD) calculations. The residence of Cu@O sites leads to an increased concentration of surface Co-ions (at catalytically active planes) and oxygen vacancies, which is beneficial for the OER. Temperature-dependent magnetization measurements reveal favorable -orbital configuration (high occupancy ≈ 1) and a low → high spin-state transition of the Co-ions, which are beneficial for the ORR in the alkaline medium. The influence of Cu-doping on the ORR activity of CoO is additionally accounted in DFT calculations via interactions between solvent water molecules and oxygen vacancies. The application of the bifunctional Cu-doped (≤5%) CoO electrocatalyst resulted in an aqueous Zn-air battery with promising power density (=84 mW/cm), stable cyclability (over 210 cycles), and low charge/discharge overpotential (=0.92 V).

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http://dx.doi.org/10.1021/acsami.4c00571DOI Listing

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