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Optimization of Multiple Reactants in a Membrane-Less Direct Methanol Fuel Cell (DMFC).
Iesti Hajar Hanapi1, Siti Kartom Kamarudin1,2, Azran Mohd Zainoodin1
1Fuel Cell Institute, Universiti Kebangsaan Malaysia, UKM, Bangi 43600, Selangor, Malaysia.
Membrane-less direct methanol fuel cells (DMFCs) show improved performance using dual electrolytes and dual oxidants (oxygen and hydrogen peroxide). This approach enhances power density and addresses challenges in conventional fuel cells.
Area of Science:
- Electrochemistry
- Materials Science
- Energy Conversion
Background:
- Conventional fuel cells face challenges with membrane management, cost, and water balance.
- Membrane-less fuel cells offer a promising alternative for portable power applications.
- Current membrane-less systems typically utilize a single electrolyte, limiting performance optimization.
Purpose of the Study:
- To enhance the performance of membrane-less direct methanol fuel cells (DMFCs).
- To investigate the use of dual electrolytes and dual oxidants (oxygen and hydrogen peroxide).
- To analyze the impact of fuel and electrolyte concentrations on fuel utilization.
Main Methods:
- Systematic testing of membrane-less DMFCs under acidic, alkaline, and dual-medium conditions.
- Evaluation of single and dual oxidant systems, including oxygen and hydrogen peroxide.
- Optimization of fuel and electrolyte concentrations to study fuel utilization and power density.
Main Results:
- Fuel utilization decreased with increasing fuel concentration but improved with electrolyte concentration up to 2M.
- Initial power density of 15.5 mW cm⁻² was achieved with dual oxidants in dual-electrolyte systems.
- Optimized system performance reached 30 mW cm⁻², demonstrating significant improvement over single-electrolyte configurations.
Conclusions:
- Dual electrolytes combined with dual oxidants (oxygen and H₂O₂) significantly enhance membrane-less DMFC performance.
- The optimized dual-electrolyte, dual-oxidant system offers a viable pathway for high-performance portable power sources.
- This study highlights the potential of multi-reactant systems to overcome limitations of single-electrolyte membrane-less fuel cells.
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