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Q.(a) Discuss the working of H2-O2 fuel cell.

(b) What is the electrochemical theory of rusting? Explain.
(c) What is galvanisation?
Himachal HpboseHPBOSE Plus Two Board 2019Subjective· 5mImportance★★★★★
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A H2-O2 fuel cell converts chemical energy of hydrogen and oxygen directly into electricity; rusting is an electrochemical corrosion process; and galvanisation protects iron by coating it with more-reactive zinc.

(a) Working of the H2H_2-O2O_2 fuel cell: the cell has two porous carbon electrodes (containing a catalyst such as finely divided Pt or Pd), immersed in an electrolyte of concentrated aqueous KOHKOH or NaOHNaOH. Hydrogen gas is bubbled over the anode and oxygen gas over the cathode.

  • Anode (oxidation): 2H2+4OH−⟶4H2O+4e−2H_2 + 4OH^- \longrightarrow 4H_2O + 4e^-
  • Cathode (reduction): O2+2H2O+4e−⟶4OH−O_2 + 2H_2O + 4e^- \longrightarrow 4OH^-
  • Overall cell reaction: 2H2+O2⟶2H2O2H_2 + O_2 \longrightarrow 2H_2O

The electrons released at the anode flow through the external circuit to the cathode, generating a continuous electric current as long as the gases are supplied. This is efficient (up to ~70%) and pollution-free (only water is produced), and such cells were used to power the Apollo space missions.

(b) Electrochemical theory of rusting: rusting of iron is understood as a small-scale electrochemical corrosion cell set up on the metal's own surface, wherever it is impure or under mechanical strain:

  • At a strained/impure spot (anodic region), iron is oxidised: Fe⟶Fe2++2e−Fe \longrightarrow Fe^{2+} + 2e^-
  • The released electrons travel through the metal to another spot (cathodic region), where dissolved atmospheric oxygen (in the moisture film on the surface, made slightly acidic by dissolved CO2CO_2 forming H2CO3H_2CO_3) is reduced: O2+4H++4e−⟶2H2OO_2 + 4H^+ + 4e^- \longrightarrow 2H_2O
  • The Fe2+Fe^{2+} formed is further oxidised by dissolved oxygen to Fe3+Fe^{3+}, which combines with water to precipitate as hydrated ferric oxide: Fe2O3⋅xH2OFe_2O_3 \cdot xH_2O — this is rust. …

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