Oxygen‐Vacancy‐Engineered CoSnO 3 /rGO Nanocubes as High‐Performance Cathode Electrocatalysts for Advanced Vanadium Redox Flow Batteries

Oxygen vacancy‐engineered CoSnO 3 /reduced graphene oxide (CoSnO 3 /rGO) serves as a durable cathode electrocatalyst for vanadium redox flow batteries (VRFBs). Structural and spectroscopic analyses confirm the formation of defect‐rich amorphous CoSnO 3 uniformly integrated with a conductive rGO network, which exhibits a high fraction (22.54%) of oxygen vacancy‐related defect oxygen species as indicated by combined X‐ray photoelectron spectroscopy and electron paramagnetic resonance measurements. These defect sites facilitate VO 2+ /VO 2 + adsorption and accelerate vanadium redox kinetics. At the same time, the synergistic interaction between CoSnO 3 nanocubes and rGO enhances electron transport, increases active‐site exposure, and promotes ion diffusion. When deposited onto heat‐treated graphite felt (HGF), the CoSnO 3 /rGO‐modified positive electrode exhibits reduced overpotential, improved electrochemical reversibility, and stable high‐rate cycling performance in VRFB single cells. The assembled VRFB achieves energy efficiencies of 84.12% at 80 mA cm −2 and 74.22% at 160 mA cm −2 , significantly surpassing the efficiencies of pristine graphite felt under identical conditions. These findings show that defect‐engineered mixed transition‐metal oxide–carbon hybrids are a promising design strategy for high‐performance VRFB cathodes and offer insights for developing next‐generation large‐scale electrochemical energy storage systems.

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Journal
ChemElectroChem
Published
2026-09-28
DOI
https://doi.org/10.1002/celc.70314
Primary Topic
Advanced battery technologies research
Type
article
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article

Oxygen‐Vacancy‐Engineered CoSnO 3 /rGO Nanocubes as High‐Performance Cathode Electrocatalysts for Advanced Vanadium Redox Flow Batteries

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article

Oxygen‐Vacancy‐Engineered CoSnO 3 /rGO Nanocubes as High‐Performance Cathode Electrocatalysts for Advanced Vanadium Redox Flow Batteries

Aknachew Mebreku Demeku, Daniel Manaye Kabtamu, Chen‐Hao Wang, Johan Nabiel Raihan, Hailegnaw Gizaw Workie, Anteneh Wodaje Bayeh, Sheau‐Pyng Ju, Zih‐Jhong Huang, Hsin‐Te Lin
article en

Abstract

Oxygen vacancy‐engineered CoSnO 3 /reduced graphene oxide (CoSnO 3 /rGO) serves as a durable cathode electrocatalyst for vanadium redox flow batteries (VRFBs). Structural and spectroscopic analyses confirm the formation of defect‐rich amorphous CoSnO 3 uniformly integrated with a conductive rGO network, which exhibits a high fraction (22.54%) of oxygen vacancy‐related defect oxygen species as indicated by combined X‐ray photoelectron spectroscopy and electron paramagnetic resonance measurements. These defect sites facilitate VO 2+ /VO 2 + adsorption and accelerate vanadium redox kinetics. At the same time, the synergistic interaction between CoSnO 3 nanocubes and rGO enhances electron transport, increases active‐site exposure, and promotes ion diffusion. When deposited onto heat‐treated graphite felt (HGF), the CoSnO 3 /rGO‐modified positive electrode exhibits reduced overpotential, improved electrochemical reversibility, and stable high‐rate cycling performance in VRFB single cells. The assembled VRFB achieves energy efficiencies of 84.12% at 80 mA cm −2 and 74.22% at 160 mA cm −2 , significantly surpassing the efficiencies of pristine graphite felt under identical conditions. These findings show that defect‐engineered mixed transition‐metal oxide–carbon hybrids are a promising design strategy for high‐performance VRFB cathodes and offer insights for developing next‐generation large‐scale electrochemical energy storage systems.

ChemElectroChemVol. 13(19)
Debre Berhan University (ET), National Taiwan University of Science and Technology (TW), National Taiwan University (TW), Addis Ababa University (ET), Academia Sinica (TW)
Affordable and clean energy
Openalex Percentile: Top 22%
Advanced battery technologies research
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