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The optimization consists of finding, for a given fuel cell load, an optimum set of values of the 7 fuel cell operating parameters: the fuel cell temperature, the reactants' stoichiometric ratios, the reactants' inlet relative humidity, and the reactants' outlet pressures, resulting in the highest fuel cell performance.
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Higher catalyst utilization due to easier fuel access and ionomer coverage led to higher fuel cell performance.
In addition, the Pt-RGO/B4C electrode also possesses higher fuel cell performance than the Pt/RGO electrode.
Both the optimized designs exhibited substantially higher fuel cell performance compared to the regular pin-type configuration.
Finally, even flow distribution is obtained according to the optimum results and high fuel cell performance can be achieved.
E/E MEAs result in high fuel cell performance at ultra-low platinum (Pt) loadings with higher electrochemical surface areas as evidenced by cyclic voltammetry experiments.
Electrochemical impedance analyses indicate that the LMZSDC had a high ionic transport, and the device had quick dynamic processes and, thus, a high fuel cell performance.
Ignition, corresponding to a high fuel cell current, arises from positive feedback between the water produced by the reaction and the transport of protons in the membrane.
ZHP/Nafion-containing anodes gave similar polarization curves to Nafion-GDEs below 100°CC but provided higher fuel cell performance above 100 °C.
Next-generation micro-solid oxide fuel cells for portable devices require nanocrystalline thin film electrolytes in order to allow fuel cell fabrication on chips at low operating temperatures and with high fuel cell power outputs.
Direct methanol fuel cell tests revealed that Nafion®/nHA nanocomposite membranes were able to provide higher fuel cell efficiency and also better electrochemical performance in both low and high concentrations of methanol feed.
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