研究目的
Investigating the effects of femtosecond laser-induced surface structuring of porous transport layers on the performance of proton exchange membrane water electrolysis cells.
研究成果
Femtosecond laser-induced structuring of the PTL surface significantly improves PEMWE cell performance by reducing ohmic and mass transport losses. The improvements are attributed to increased specific surface area and reduced electrical interfacial contact resistances. The study provides a foundation for further optimization of PEMWE components and materials.
研究不足
The study's scope was limited to short-term stress tests up to 150 hours, and the long-term stability of the laser-structured PTLs over months or years was not investigated. Additionally, the optimal laser parameters and contact pressure for different materials were not systematically explored.
1:Experimental Design and Method Selection
The study involved modifying the interface between the porous transport layer (PTL) and the catalyst layer (CL) in PEMWE cells using femtosecond laser-induced surface structuring to increase the specific surface area of titanium-based fibers of the PTL.
2:Sample Selection and Data Sources
Commercial PEMWE cell setups with a geometric active area of 4 cm2 were used. Titanium fiber-based PTLs with specific properties were selected for the anode side, and carbon-based PTLs were used on the cathode side.
3:List of Experimental Equipment and Materials
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4:Experimental Procedures and Operational Workflow
The PTLs were washed in DI-water in an ultrasonic bath before laser treatment and physical examinations. The cells were assembled in a dry state, rinsed with water heated to 60 °C for one hour to ensure full humidification of the membrane, and then subjected to a conditioning phase followed by electrochemical characterization and short-term stress tests.
5:Data Analysis Methods
The study utilized polarization curves, electrochemical impedance spectroscopy (EIS) measurements, and current interrupt (CI) measurements for electrochemical characterization. Data analysis included overpotential analysis, Tafel-plot analysis, and mass transport overpotential determination.
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