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Updated: Jan 11, 2026

Solar-Driven Electrochemical Green Fuel Production from CO2 and Water Using Ti3C2Tx MXene-Supported CuZn and NiCo Catalysts
Published on: November 7, 2025
Engineering Active Sites in CeO2 by Nickel Doping for Efficient Water Splitting and Green Energy Production by
Anjali Bankura1, Anurag Gaur2, Maneesha Garg1
1Department of Physics, J.C. Bose University of Sci.& Technology, YMCA, Faridabad 121006, India.
Abstract:
This study focuses on the development and analysis of a device known as hydroelectric cell. It generates electricity directly from water by splitting it into H3O+ and OH- ions at room temperature. This eco-friendly device also produces hydrogen gas as a byproduct. CeO2 and Ni-doped CeO2 nanoparticles were synthesized via the coprecipitation method and thoroughly characterized. X-ray diffraction confirmed their crystalline fluorite structure, while Raman spectroscopy and FTIR analysis revealed the presence of oxygen vacancies induced by nickel doping. Field-emission scanning electron microscopy showed a well-dispersed polyhedral morphology, and Brunauer-Emmett-Teller analysis indicated a significant enhancement in surface properties. The surface area increased from 34.83 m2/g for pristine CeO2 to 113.18 m2/g for (3M%) Ni-CeO2, with a pore size of 7.5 nm and a pore volume of 0.1653 cm3/g. The fabricated 4 cm2 hydroelectric cells achieved an open-circuit voltage of 0.9 V and short-circuit currents of 8.98, 15.03, 40.0, and 12.0 mA for CeO2, (1M%) Ni-CeO2, (3M%) Ni-CeO2 and (5M%) Ni-CeO2, respectively. Electrochemical impedance spectroscopy confirmed enhanced ionic diffusion under wet conditions, with the 3M% Ni-CeO2 hydroelectric cell showing the lowest impedance (∼16 Ω). The 4-fold increase in current generation from pristine CeO2 to (3M%) Ni-CeO2 underscores the role of nickel in enhancing water dissociation, highlighting the potential of these hydroelectric cells for sustainable green energy applications.

