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Revision notes with simplified explanations to understand Fuel Cells quickly and effectively.
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Fuel cells are electrochemical cells that generate an electric current through redox reactions using a continuous supply of fuel (often hydrogen) and an oxidant (usually oxygen). Unlike traditional batteries, fuel cells do not need recharging as long as fuel and oxidant are available, making them suitable for various applications, including hydrogen-powered vehicles.
In an alkaline hydrogen-oxygen fuel cell, hydrogen and oxygen gases are supplied as reactants. The cell operates at a high efficiency and produces only water as a waste product.
The electrode reactions in this type of cell are as follows:
Hydrogen gas is oxidized at the anode, releasing electrons and forming hydroxide ions in the alkaline environment.
Oxygen gas is reduced at the cathode, reacting with water and electrons to form hydroxide ions.
Combining the anode and cathode reactions, we get the net cell reaction:
This reaction produces water as the sole byproduct, making hydrogen fuel cells an environmentally friendly alternative to fossil-fuel-powered engines.
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