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Electrocatalytic Reduction of Oxygen on CuO-Immobilized Ag Surface Prepared by SILAR Method in Alkaline Medium
by
Uddin, Jamal
, Hossain, Mohammad Imran
, Hasnat, Mohammad A.
, Singha, Nayan Ranjan
, Rahaman, Mostafizur
, Khan, Merajuddin
, Laila, Rawnak
in
Adsorption
/ Alternative energy sources
/ Carbon
/ Charge transfer
/ Chemical reduction
/ Climate change
/ Copper oxide
/ Copper oxides
/ Cuprite
/ Dielectric films
/ Efficiency
/ Electric properties
/ Electricity
/ Electrochemical impedance spectroscopy
/ Electrodes
/ Electrolytes
/ Electrons
/ Force and energy
/ Fuel cell industry
/ Fuel cells
/ Green technology
/ Interfaces
/ Metals
/ Methods
/ Morphology
/ Nuclear energy
/ Open circuit voltage
/ Oxidation
/ Oxygen reduction reactions
/ Renewable resources
/ Silver
/ Spectrum analysis
/ Substrates
/ Temperature
/ Thin films
/ X-ray spectroscopy
2025
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Electrocatalytic Reduction of Oxygen on CuO-Immobilized Ag Surface Prepared by SILAR Method in Alkaline Medium
by
Uddin, Jamal
, Hossain, Mohammad Imran
, Hasnat, Mohammad A.
, Singha, Nayan Ranjan
, Rahaman, Mostafizur
, Khan, Merajuddin
, Laila, Rawnak
in
Adsorption
/ Alternative energy sources
/ Carbon
/ Charge transfer
/ Chemical reduction
/ Climate change
/ Copper oxide
/ Copper oxides
/ Cuprite
/ Dielectric films
/ Efficiency
/ Electric properties
/ Electricity
/ Electrochemical impedance spectroscopy
/ Electrodes
/ Electrolytes
/ Electrons
/ Force and energy
/ Fuel cell industry
/ Fuel cells
/ Green technology
/ Interfaces
/ Metals
/ Methods
/ Morphology
/ Nuclear energy
/ Open circuit voltage
/ Oxidation
/ Oxygen reduction reactions
/ Renewable resources
/ Silver
/ Spectrum analysis
/ Substrates
/ Temperature
/ Thin films
/ X-ray spectroscopy
2025
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Electrocatalytic Reduction of Oxygen on CuO-Immobilized Ag Surface Prepared by SILAR Method in Alkaline Medium
by
Uddin, Jamal
, Hossain, Mohammad Imran
, Hasnat, Mohammad A.
, Singha, Nayan Ranjan
, Rahaman, Mostafizur
, Khan, Merajuddin
, Laila, Rawnak
in
Adsorption
/ Alternative energy sources
/ Carbon
/ Charge transfer
/ Chemical reduction
/ Climate change
/ Copper oxide
/ Copper oxides
/ Cuprite
/ Dielectric films
/ Efficiency
/ Electric properties
/ Electricity
/ Electrochemical impedance spectroscopy
/ Electrodes
/ Electrolytes
/ Electrons
/ Force and energy
/ Fuel cell industry
/ Fuel cells
/ Green technology
/ Interfaces
/ Metals
/ Methods
/ Morphology
/ Nuclear energy
/ Open circuit voltage
/ Oxidation
/ Oxygen reduction reactions
/ Renewable resources
/ Silver
/ Spectrum analysis
/ Substrates
/ Temperature
/ Thin films
/ X-ray spectroscopy
2025
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Electrocatalytic Reduction of Oxygen on CuO-Immobilized Ag Surface Prepared by SILAR Method in Alkaline Medium
Journal Article
Electrocatalytic Reduction of Oxygen on CuO-Immobilized Ag Surface Prepared by SILAR Method in Alkaline Medium
2025
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Overview
The oxygen reduction reaction (ORR) is a crucial process in electrochemical systems, such as fuel cells, as it effectively converts oxygen into water, thereby contributing significantly to sustainable energy generation. In this study, copper oxide (CuO) thin films were deposited onto silver (Ag) substrates using a modified successive ionic layer adsorption and reaction (SILAR) method, followed by an investigation of their electrocatalytic performance toward ORR in an alkaline medium. Comprehensive electrochemical characterizations, including cyclic voltammetry (CV), electrochemical impedance spectroscopy (EIS), and open circuit potential (OCP), were employed to evaluate catalyst behaviour. Elemental analysis through energy-dispersive X-ray spectroscopy (EDX) confirmed the uniform distribution of CuO, while scanning electron microscopy (SEM) revealed a sponge-like surface morphology which potentially enhances catalytic efficiency. Moreover, EIS spectra revealed a lower charge transfer resistance for the CuO/Ag electrode (3.37 kΩ) compared to bare Ag (4.23 kΩ), reflecting improved ORR kinetics. Among different deposition cycles, 15 SILAR cycles yielded the highest current density of 0.8 mA cm−2 at 0.60 V. Kinetic analysis revealed that the reaction is irreversible, with a lower value of Tafel slope (32 mV dec−1) and high transfer coefficient (α = 0.45), indicating a concerted reduction mechanism. The ORR pathway was found to follow a four-electron (4e−) transfer process.
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