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Q.What is Corrosion? Explain electrochemical theory of rusting. OR What is Electrolysis? State and explain Faraday's laws of electrolysis.

Jammu Kashmir JkboseJKBOSE Class 12 Annual Regular Examination 2020Subjective· 5mImportance★★★★★
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Rusting of iron is explained as a tiny electrochemical (galvanic) cell set up on the metal surface itself.

Corrosion is the gradual, spontaneous destruction of a metal by chemical or electrochemical reaction with substances in its environment (moisture, O2, CO2, SO2, acidic gases, etc.), converting the metal into oxides, hydroxides, carbonates or sulphides at its surface. Rusting (of iron) is the most common example.

Electrochemical theory of rusting:

A drop of water on an iron surface, together with dissolved CO2 from air (forming carbonic acid, a weak electrolyte) and dissolved O2, sets up a miniature galvanic cell on the metal:

  • At one spot (anode), iron is oxidised: Fe(s) → Fe²⁺(aq) + 2e⁻
  • Electrons flow through the metal to another spot (cathode), where dissolved oxygen is reduced in the presence of H⁺ (from H2CO3): O2(g) + 4H⁺(aq) + 4e⁻ → 2H2O(l)
  • Overall: 2Fe(s) + O2(g) + 4H⁺(aq) → 2Fe²⁺(aq) + 2H2O(l)

The Fe²⁺ formed is further oxidised by atmospheric oxygen to Fe³⁺, which combines with water to form hydrated ferric oxide, Fe2O3·xH2O — this is rust. Because it is electrochemical, rusting is faster in the presence of electrolytes (e.g. salty/acidic water) which increase conductivity of the cell.


OR — Electrolysis and Faraday's Laws

Electrolysis is the decomposition of an electrolyte into its constituent ions, and their subsequent discharge at the electrodes, by passing a direct electric current through the molten electrolyte or its aqueous solution.

Faraday's First Law of Electrolysis: The mass (w) of a substance deposited or liberated at an electrode is directly proportional to the quantity of electric charge (Q) passed through the electrolyte.

w ∝ Q ⟹ w = Z·Q = Z·I·t …

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