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Q.Discuss electrochemical principle regarding rusting of iron.

Bihar BsebBihar Board Intermediate 2024Subjective· 2mImportance★★★★★
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Rusting is electrochemical corrosion: iron acts as anode (oxidised to Fe2+), dissolved O2 acts as cathode (reduced), and the product is hydrated ferric oxide Fe2O3·xH2O (rust).

Rusting of iron requires both water and oxygen and proceeds through an electrochemical mechanism. On a moist iron surface, minute galvanic (electrochemical) cells are set up:

At the anodic region (oxidation):

Fe(s) → Fe2+(aq) + 2e- (E° for Fe2+/Fe = -0.44 V)

The electrons flow through the metal to the cathodic region, where dissolved oxygen (in the presence of H+ from dissolved CO2/acidic water) is reduced:

At the cathodic region (reduction):

O2 + 4H+ + 4e- → 2H2O (E° = +1.23 V)

The overall cell reaction:

2Fe + O2 + 4H+ → 2Fe2+ + 2H2O

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